How do plants get their food molecules??

Answers

Answer 1
Plants make their own food by using a process called photosynthesis. The plants produce glucose from inorganic molecules- carbon dioxide and water - using light. I hope this helps!
Answer 2

Answer:

Photosynthesis

Explanation:

Plants get energy/food molecules from a process called Photosynthesis

     Steps Of Photosynth's -

 The Reactants collect in the chloroplast. ( Carbon Dioxide, Water, Energy )       Light Energy from the sun drives Chemical Reactions.The Reactants Include glucose and oxygen which is released into the air.                

 

                                                  Hope This Helps!

                                                                             -Aslina <3


Related Questions

For a certain chemical reaction, ΔH∘=−31.0kJ and ΔS∘=−85.5J/K. Calculate ΔG∘ΔG∘ for the reaction at 298 KK.

Answers

The ΔG∘ΔG∘ for the reaction at 298 KK is -5,521 J.

To calculate ΔG∘ (Gibbs free energy change) for the reaction at 298 K, we can use the following equation:

ΔG∘ = ΔH∘ - TΔS∘

Where:
ΔH∘ = -31.0 kJ (enthalpy change)
ΔS∘ = -85.5 J/K (entropy change)
T = 298 K (temperature)

Step 1: Convert ΔH∘ and ΔS∘ to the same unit (Joules):
ΔH∘ = -31.0 kJ * 1000 J/kJ = -31,000 J

Step 2: Calculate TΔS∘:
TΔS∘ = (298 K) * (-85.5 J/K) = -25,479 J

Step 3: Calculate ΔG∘:
ΔG∘ = ΔH∘ - TΔS∘ = (-31,000 J) - (-25,479 J) = -5,521 J

So,-5,521 J is the ΔG∘ for the reaction at 298 K.

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[tex]ΔG∘ = ΔH∘ - TΔS∘ = -31.0 kJ - (298 K)(-85.5 J/K)/1000 = -7.51 kJ.[/tex]

At a temperature of 298 K, the Gibbs free energy change (ΔG∘) for a chemical reaction with a given enthalpy change (ΔH∘) and entropy change (ΔS∘) can be calculated using the equation ΔG∘ = ΔH∘ - TΔS∘, where T is the temperature in Kelvin. In this case, plugging in the given values, we get ΔG∘ = -31.0 kJ - (298 K)(-85.5 J/K)/1000 = -7.51 kJ. This negative value indicates that the reaction is spontaneous in the forward direction at 298 K.

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The formulae for the given names:(a) Dibromobis(ethylenediamine)cobalt(III) sulfateIn this complex, the sulfate ion is an anion and complex ion Dibromobis(ethylenediamine)cobalt(III) is cation. The oxidation number of central metal ion(Co) is +3. There are two en and two bromine ligands are present.Calculate the oxidation state of complex ion as follows:Thus, charge present on complex ion is +1. So the complex ion will be .The sulfate ion neutralizes the complex ion.Therefore, the formula is

Answers

Dibromobis(ethylenediamine)cobalt(III) sulfate formula is [tex][Co(en)_2Br_2]SO_4[/tex] with Co in +3 oxidation state and sulfate neutralizing the complex.

The given complex, Dibromobis(ethylenediamine)cobalt(III) sulfate, has a cationic complex ion with Co in a +3 oxidation state and two ethylenediamine (en) and two bromine ligands.

To determine the oxidation state of the complex ion, we can use the fact that the overall charge of the complex ion is +1. Therefore, the formula of the complex ion is [tex][Co(en)_2Br_2][/tex]+.

The sulfate ion acts as an anionic counter ion and neutralizes the complex ion. Thus, the final formula for the complex is [tex][Co(en)_2Br_2]SO_4[/tex].

In summary, the complex has Co in a +3 oxidation state and is neutralized by the sulfate ion.

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The formula for Dibromobis(ethylenediamine)cobalt(III) sulfate is [Co(en)2Br2]SO4, where en is ethylenediamine. The oxidation state of Co is +3.

The formula for the given name "Dibromobis(ethylenediamine)cobalt(III) sulfate" can be determined by analyzing the complex ion and the sulfate ion separately. The complex ion has two ethylenediamine (en) and two bromine ligands, and the central cobalt ion has an oxidation state of +3. To determine the charge on the complex ion, we add up the charges on the ligands and subtract that from the charge on the ion. This gives us a charge of +1 for the complex ion. Since the sulfate ion has a charge of -2, it neutralizes the complex ion. Therefore, the formula for this compound is [Co(en)2Br2]+SO4²-.

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What is the concentration of H+ in solution given the [OH] = 1.32 x 10^-4? A) 1.0 x 10^14 M B) 7.58 x 10^-11 M C) 1.32 x 10^-11 M D) not enough information E) none of the above

Answers

Option B) 7.58 x 10⁻¹¹ M is the concentration of H+ in solution given the [OH] = 1.32 x  10⁻⁴  will be 1.32 x 10⁻¹¹ M.

We can use the fact that the product of the concentration of hydrogen ions (H⁺) and hydroxide ions (OH⁻) in a solution is equal to 1 x 10⁻¹⁴ M² at 25°C. This is known as the ion product constant of water (Kw).

Mathematically, we can write:

Kw = [H⁺][OH⁻] = 1 x 10⁻¹⁴ M²

We are given the concentration of hydroxide ions as [OH⁻] = 1.32 x 10⁻⁴ M. We can use this information and the Kw equation to calculate the concentration of hydrogen ions:

[H⁺] = Kw / [OH⁻]

[H⁺] = (1 x 10⁻¹⁴ M²) / (1.32 x 10⁻⁴ M)

[H⁺] = 7.58 x 10⁻¹¹ M

Therefore, the concentration of H⁺ in solution is 7.58 x 10⁻¹¹ M, which is option B.

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a chemical reaction is at equilibrium. compared to the rate of the forward reaction, the rate of the reverse reaction is?

Answers

At equilibrium, the concentrations of the reactants and products remain constant, and the rate of the forward reaction is equal to the rate of the reverse reaction.

What is equilibrium ?

Equilibrium in chemistry is a state in which the concentrations of reactants and products remain constant over time. This occurs when the rate of the forward reaction is equal to the rate of the reverse reaction. Equilibrium can be reached through a dynamic process in which reactants are converted to products and products are converted to reactants. The equilibrium point will be dependent on the reaction conditions (temperature, pressure, and concentrations of reactants and products). At equilibrium, the reaction does not stop, but the concentrations of reactants and products remain constant.

In chemistry, equilibrium is the state where the rates of the forward and reverse reaction of a chemical reaction are equal. At equilibrium, the concentrations of the reactants and products remain constant and the system is in a dynamic balance. The reaction is said to be in a steady state and it is not possible to predict which direction the reaction will take.

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What change in volume results if 170. 0 mL of gas is cooled from 30. 0 °C to 20. 0 °C? (Charles Law)

Answers

To calculate the change in volume when 170.0 mL of gas is cooled from 30.0 °C to 20.0 °C using Charles' Law, we need to use the relationship between volume and temperature for an ideal gas. Charles' Law states that at constant pressure, the volume of a gas is directly proportional to its temperature.

By using the formula V₁ / T₁ = V₂ / T₂, where V₁ and T₁ are the initial volume and temperature, and V₂ and T₂ are the final volume and temperature, we can determine the change in volume.

According to Charles' Law, the ratio of the initial volume to the initial temperature is equal to the ratio of the final volume to the final temperature:

V₁ / T₁ = V₂ / T₂

Plugging in the given values:

V₁ = 170.0 mL

T₁ = 30.0 °C + 273.15 = 303.15 K

T₂ = 20.0 °C + 273.15 = 293.15 K

Substituting these values into the equation:

170.0 mL / 303.15 K = V₂ / 293.15 K

To solve for V₂, we rearrange the equation:

V₂ = (170.0 mL / 303.15 K) * 293.15 K

Simplifying the equation:

V₂ ≈ 163.3 mL

Therefore, the change in volume is approximately 163.3 mL when 170.0 mL of gas is cooled from 30.0 °C to 20.0 °C.

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given the e° for the following half-reactions: cu+ + e- --> cu° e°red = 0.52 v cu2+ + 2e- --> cu° e°red = 0.34 v what is e° for the reaction: cu+ --> cu2+ + e-

Answers

The e° for the reaction Cu⁺ → Cu²⁺ + e⁻ is 0.18 V.

To find the e° for the overall reaction, we need to subtract the e° value for the reduction half-reaction from the e° value for the oxidation half-reaction:

Cu⁺ + e⁻ → Cu°   E°(reduction) = 0.52 V (reduction half-reaction)
Cu²⁺ + 2e⁻ → Cu°   E°(reduction) = 0.34 V (reduction half-reaction)

To find E°(oxidation), reverse the E° value for the reduction half reaction so that overall value of E°cell is positve.
Cu° → Cu²⁺ + 2e⁻   E°(oxidation) = -0.34 V (oxidation half-reaction)

The overall reaction is thus:
Cu⁺ + e⁻ → Cu°  
Cu° → Cu²⁺ + 2e⁻
=Cu⁺ → Cu²⁺ + e⁻  

E°cell = E°(reduction) + E°(oxidation) = 0.52 V + (-0.34 V) = 0.18 V

Therefore, standard cell potential (E°cell) is 0.18 V.

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what is the orbital diagram for the valence electrons in a ground state atom of nitrogen?

Answers

An orbital diagram is a graphical representation of the arrangement of electrons within the orbitals of an atom or ion. It provides a visual depiction of the electron configuration, showing the distribution of electrons among different energy levels and orbitals.

The orbital diagram for the valence electrons in a ground-state atom of nitrogen can be represented as follows: N: 1s² 2s² 2p³.In this diagram, the "1s²" and "2s²" orbitals are filled with electrons, while the "2p³" orbital has three electrons occupying it. The "2p" orbital has three sub-orbitals, each of which can hold up to two electrons. In the case of nitrogen, two of the sub-orbitals are filled with one electron each, while the third sub-orbital has two electrons. This gives nitrogen a total of five valence electrons.


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for the sn2 reactions, you can see a difference in leaving groups when comparing the rate of reaction of bromobutane and which other alkyl halide? 1-chlorobutane which is the better leaving group?

Answers

The better leaving group in this comparison is bromide ion ([tex]Br^-[/tex]) from bromobutane.

The rate of reaction between bromobutane and 1-chlorobutane, bromobutane is the better leaving group due to the larger size of the bromine atom compared to chlorine. The larger size of bromine makes it easier for the leaving group to dissociate from the carbon atom, leading to a faster rate of reaction compared to 1-chlorobutane.

This is because bromide ion is a larger and more polarizable group than the chloride ion ([tex]Cl^-[/tex]) from 1-chlorobutane, which makes it more stable as a leaving group and results in a faster rate of reaction for bromobutane in [tex]SN_2[/tex] reactions.

Therefore, For the [tex]SN_2[/tex] reactions, when comparing the rate of reaction between bromobutane and 1-chlorobutane, the difference in leaving groups can be observed. Hence,  The better leaving group in this comparison is bromide ion ([tex]Br^-[/tex]) from bromobutane.

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For the homogeneous solution consisting of CH3CH2OHCH3CH2OH and H2OH2O, indicate the type of forces that are involved.
Check all that apply.
dispersion forces
hydrogen bonding
dipole-dipole forces
ion-dipole forces

Answers

For the homogeneous solution consisting of CH3CH2OH (ethanol) and H2O (water), the types of forces involved are Hydrogen bonding, Dipole-dipole forces, Dispersion forces (van der Waals forces) and Ion-dipole forces.

What forces are involved in a homogeneous solution?

1. Hydrogen bonding: Both ethanol and water molecules can form hydrogen bonds due to the presence of hydrogen attached to an electronegative atom (oxygen) in both molecules. Hydrogen bonding is a strong intermolecular force that occurs between molecules containing hydrogen bonded to nitrogen, oxygen, or fluorine.

2. Dipole-dipole forces: Ethanol and water molecules have permanent dipoles due to the electronegativity difference between carbon and oxygen/nitrogen. Dipole-dipole forces occur between the positive end of one molecule and the negative end of another.

3. Dispersion forces (van der Waals forces): Dispersion forces are present in all molecules and arise from temporary fluctuations in electron distribution, resulting in temporary dipoles. These forces exist between all molecules, including ethanol and water.

4. Ion-dipole forces: Ion-dipole forces occur when an ionic compound (such as a salt) is dissolved in a polar solvent (like water). In the given homogeneous solution of ethanol and water, there are no ions present, so ion-dipole forces are not applicable.

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Complex III accepts electrons from _____ and transfers them to _____.
- ubiquinol; cytochrome c
- ubiquinol; cytochrome b
- cytochrome c; cytochrome a
- ubiquinone; cytochrome a

Answers

In the electron transport chain, Complex III receives electrons from ubiquinol and transfers them to cytochrome c.

Complex III in the electron transport chain accepts electrons from ubiquinol and transfers them to cytochrome c. Ubiquinol is a reduced form of coenzyme Q10 (ubiquinone), which is a lipid-soluble molecule that shuttles electrons between complex I or II and complex III in the inner mitochondrial membrane. The electrons are then transferred to cytochrome c, a small heme protein that is mobile in the intermembrane space of the mitochondria. Cytochrome c then delivers the electrons to complex IV, which ultimately transfers the electrons to molecular oxygen (O2) to form water (H2O) as the final product. This process generates a proton gradient across the inner mitochondrial membrane, which is used to synthesize ATP through the activity of ATP synthase. Overall, the electron transport chain is essential for oxidative phosphorylation and ATP production in cells.

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How does one measure heat changes in a chemical reaction

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Heat changes in a chemical reaction can be measured using calorimetry, which involves monitoring temperature changes. Calorimeters are used to contain the reactants and measure the heat exchange between the reaction and its surroundings.

Calorimetry is the process of measuring heat changes in a chemical reaction. A calorimeter is a device designed to contain the reactants and measure the heat exchange. There are different types of calorimeters, but the most common is a constant pressure calorimeter.

To measure heat changes, the reactants are placed inside the calorimeter, which is insulated to minimize heat exchange with the surroundings. The initial temperature is recorded, and then the reaction is initiated, allowing the reaction to occur. As the reaction proceeds, heat is either absorbed or released, causing a temperature change in the system. The final temperature is then recorded.

By monitoring the temperature change and knowing the heat capacity of the calorimeter, the heat change (ΔH) of the reaction can be calculated using the formula: ΔH = q / n

where q is the measured heat change and n is the number of moles of the substance undergoing the reaction. Calorimetry provides a direct method to measure heat changes in a chemical reaction and is an essential tool for studying thermochemical properties of substances.

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How many kilocalories ( Kcal) of heat are needed to vaporize 35.0 grams of water to its vapor at 100 Celsius? Heat of vaporization Of H2O = 540 calories / 1 g H2O .A) 18900 Kcal. B) 18.9 Kcal. C) 15.4 Kcal. D) 189 Kcal

Answers

The number of kilocalories ( Kcal) of heat which are needed to vaporize 35.0 grams of water to its vapor at 100 Celsius is 18.9 Kcal.

So, the correct answer is B.

To calculate the amount of heat needed to vaporize 35.0 grams of water at 100 Celsius, we can use the formula:

heat = mass x heat of vaporization

First, we need to convert the mass of water from grams to kilograms, since the heat of vaporization is given in calories per gram:

mass = 35.0 g / 1000 g/kg = 0.035 kg

Next, we can use the given heat of vaporization of water:

heat of vaporization = 540 cal/g

To convert calories to kilocalories, we divide by 1000:

heat of vaporization = 0.54 kcal/g

Now we can plug in the values and solve for heat:

heat = 0.035 kg x 0.54 kcal/g = 0.0189 kcal

To express the answer in kilocalories, we can round up to 2 decimal places:

heat = 18.90 Kcal

Therefore, the correct answer is B) 18900 Kcal expressed to 2 decimal places.

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prove that s4 is not isomorphic to d12.

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Here, S4 is not isomorphic to D12.

S4 is the symmetric group on 4 elements, which has 4! = 24 elements.

It represents all possible permutations of 4 distinct elements.

D12 is the dihedral group of order 12, which represents the symmetries of a regular 12-sided polygon.

It has 12 elements, consisting of 6 rotational symmetries and 6 reflection symmetries.

To prove that S4 is not isomorphic to D12, we can simply observe their orders (number of elements).

Since the order of S4 is 24 and the order of D12 is 12, they cannot be isomorphic because isomorphic groups must have the same order.

Thus, S4 is not isomorphic to D12.

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The goal is finding experimentally the number of oxygen atoms, X, in the formula of Copper (ii) gluconate, Cu (C6H11Ox)2
Mass of Copper (II) gluconate: 1.40g
Mass of aluminum cup: 3.87g
Mass of aluminum cup+ Copper: 4.02g
___ Cu(C6H11Ox)2 ==== > ___ Cu (s) + ____ C6H11Ox -(aq)
Mass of copper recovered: _______ grams.
Moles of copper recovered __________ mol
Moles of copper (II) gluconate (use mole ratio): _______ mol
Value of X: Before rounding: _______, after rounding: ________
Experimental chemical formula for copper (II) gluconate:___________

Answers

We cannot calculate the value of X or the experimental chemical formula for copper (II) gluconate.

To find the number of oxygen atoms, X, in the formula of Copper (II) gluconate, Cu (C6H11Ox)2, we can use a redox reaction to convert all the copper (II) gluconate to copper metal. The balanced redox equation is:

2Cu(C6H11Ox)2 + 3O2 + 4NaOH → 4Na[Cu(C6H11Ox)2] + 2H2O

Using the given mass of Copper (II) gluconate (1.40g) and the mass of the aluminum cup and copper (4.02g - 3.87g = 0.15g), we can find the mass of copper recovered:

Mass of copper recovered = 0.15 g - weight of the aluminum cup = 0.15 g - 3.87 g =  -3.72 g

This is a negative mass, which means there was likely an error in the measurement or calculation. It's possible that the mass of the aluminum cup was recorded incorrectly or that the reaction did not go to completion.

Assuming that the experiment was performed correctly, we can calculate the moles of copper recovered using the molar mass of copper:

Moles of copper recovered = mass of copper recovered / molar mass of copper

Molar mass of copper = 63.55 g/mol

Moles of copper recovered = -3.72 g / 63.55 g/mol = -0.0585 mol

Again, this is a negative value, which suggests an error in the experiment.

Assuming the experiment was performed correctly, we can calculate the moles of Copper (II) gluconate:

Moles of Copper (II) gluconate = Moles of copper recovered / 2 (from the balanced equation)

Moles of Copper (II) gluconate = -0.0585 mol / 2 = -0.0293 mol

This is also a negative value, suggesting an error in the experiment.

Since the experiment did not yield valid results, we may need to repeat the experiment with improved measurement and calculation techniques to obtain valid results.

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The number of oxygen atoms (X) in the formula of Copper (II) gluconate can be experimentally determined by calculating the moles of copper recovered and the moles of Copper (II) gluconate used.

The experimental chemical formula can be calculated using the mole ratio of copper and Copper (II) gluconate.

To determine the number of oxygen atoms in Copper (II) gluconate, we can use a simple experiment involving the reduction of Copper (II) gluconate to copper metal.

The mass of Copper (II) gluconate used, the mass of copper recovered, and the balanced chemical equation are given.

From the mass of Copper (II) gluconate used, we can calculate the moles of Copper (II) gluconate by dividing the mass by its molar mass. From the balanced chemical equation, we know that one mole of Copper (II) gluconate produces one mole of copper.

Therefore, the moles of copper recovered will be equal to the moles of Copper (II) gluconate used.

Using the moles of Copper (II) gluconate used and the mass of the compound, we can calculate the value of X. The moles of Copper (II) gluconate used can be divided by 2 since the formula has two Copper (II) ions.

The resulting value can then be divided by the mass of Copper (II) gluconate used to obtain the molar mass of Copper (II) gluconate. Dividing the molar mass by the molar mass of one Copper (II) ion will give the value of X.

The experimental chemical formula for Copper (II) gluconate can be calculated using the mole ratio of copper and Copper (II) gluconate. The ratio of Copper (II) gluconate to copper is 1:1, which means that the experimental chemical formula will have the same number of Copper (II) ions as copper atoms.

Therefore, the experimental chemical formula for Copper (II) gluconate can be written as Cu(C6H11Ox)2.

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Several calibration curves were created for a series of protein standards of known molecular mass using molecular exclusion columns with different pore sizes. log (molecular mass) Which pore size should be used to perform molecular exclusion chromatography of proteins with a molecular mass near 10,000? 50 60 100 110 70 80 90 Elution volume (ML) 10 pm 5 nm 10 nm Om O 100 pm 50 nm 100 nm

Answers

To perform molecular exclusion chromatography of proteins with a molecular mass near 10,000, the calibration curve with a pore size of 60 should be used. This is because the molecular mass of the proteins falls within the range of the calibration curve and using a pore size of 60 will ensure proper separation and purification of the protein sample. Calibration curves are used to determine the relationship between elution volume and molecular mass of the protein standards. Chromatography is a technique used for separation and purification of proteins based on their properties. The pore size of the molecular exclusion column determines the size of the molecules that can pass through it. Therefore, selecting the appropriate pore size is important to ensure accurate separation and purification of the target protein.

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Calculate δssurr for the following reaction at 60 °c: mgco3(s) ⇄ mgo(s) co2(g) δhrxn = 100.7 kj

Answers

The δssurr for the reaction MgCO₃(s) ⇄ MgO(s) + CO₂(g) at 60°C with a δHrxn of 100.7 kJ is -334.5 J/K.

To calculate the δssurr (change in the entropy of the surroundings) for the reaction:

MgCO₃(s) ⇄ MgO(s) + CO₂(g) at 60°C, you need to use the equation:
δssurr = -δHrxn / T
where δHrxn is the change in enthalpy of the reaction (100.7 kJ), and T is the temperature in Kelvin. First, convert 60°C to Kelvin:
T = 60°C + 273.15 = 333.15 K
Next, convert δHrxn from kJ to J:
100.7 kJ * 1000 = 100,700 J
Now, plug the values into the equation:
δssurr = -100,700 J / 333.15 K = -334.5 J/K
So, the change in the entropy of the surroundings for the reaction is -334.5 J/K.

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pq-5. what is the ph of a 0.0050 m solution ofba(oh)2(aq) at 25 °c?

Answers

The pH of a 0.0050 M solution of Ba(OH)2(aq) at 25°C is 12. To find the pH of a 0.0050 M solution of Ba(OH)2(aq) at 25°C, we first need to determine the concentration of hydroxide ions (OH-) in the solution.

Ba(OH)2 dissociates into Ba2+ and 2OH-, so the concentration of OH- ions in the solution will be twice that of Ba(OH)2.
[OH-] = 2 * 0.0050 M = 0.010 M
Next, we can use the formula for calculating pH:
pH = -log[H+]
At 25°C, the product of the concentrations of H+ and OH- in water is 1.0 x [tex]10^{-14}[/tex].
[H+][OH-] = 1.0 x [tex]10^{-14}[/tex]
[H+] = 1.0 x 10^-14 / [OH-] = 1.0 x 10^-14 / 0.010 = 1.0 x [tex]10^{-12}[/tex] M
Finally, we can plug in the value for [H+] into the pH formula:
pH = -log[H+] = -log(1.0 x [tex]10^{-12}[/tex])
pH = 12

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Radon is a toxic gas that exists in minute quantities in most homes. If a sample of radon gas occupies a volume of 38.0L at 29.0°C, at what temperature, in °C, will it occupy a volume of 19.0L if the pressure remains constant? (Hint: Convert ° C to K)

Answers

The sample of radon gas occupies a volume of 19.0 L (at constant pressure), it will be at a temperature of approximately -122.07 °C.

To solve this problem, we can use the combined gas law equation, which relates the initial and final conditions of a gas sample when pressure is constant. The equation is as follows:

(P₁ * V₁) / T₁ = (P₂ * V₂) / T₂

Where:

P₁ and P₂ are the initial and final pressures, respectively (constant in this case)

V₁ and V₂ are the initial and final volumes, respectively

T₁ and T₂ are the initial and final temperatures, respectively (in Kelvin)

Given:

Initial volume (V₁) = 38.0 L

Initial temperature (T₁) = 29.0 °C

Final volume (V₂) = 19.0 L

We need to convert the temperatures from Celsius to Kelvin, as the gas laws require temperature to be in Kelvin.

Converting temperatures to Kelvin:

T₁ = 29.0 °C + 273.15 = 302.15 K

We need to solve for the final temperature (T₂) when the volume is 19.0 L.

Using the combined gas law equation:

(P₁ * V₁) / T₁ = (P₂ * V₂) / T₂

Since the pressure is constant, it cancels out:

(V₁ / T₁) = (V₂ / T₂)

Now we can plug in the given values:

(38.0 L / 302.15 K) = (19.0 L / T₂)

To solve for T₂, we can cross-multiply and then divide:

38.0 L * T₂ = 19.0 L * 302.15 K

T₂ = (19.0 L * 302.15 K) / 38.0 L

Calculating this expression, we find the final temperature (T₂) to be approximately 151.08 K.

To convert this back to Celsius, we subtract 273.15:

T₂ = 151.08 K - 273.15 = -122.07 °C

Therefore, when the sample of radon gas occupies a volume of 19.0 L (at constant pressure), it will be at a temperature of approximately -122.07 °C.

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What concentration of HF (Ka = 7.2 × 10–4) has the same pH as that of 0.070 M HCl?
Question 10 options:
A)
6.8 M
B)
5.0× 10–6 M
C)
1.0 × 10–2 M
D)
0.070 M
E)
0.15 M

Answers

To determine the concentration of HF that has the same pH as 0.070 M HCl, we can use the equation for pH:

pH = -log[H+]

Since HCl is a strong acid, it completely dissociates in water, resulting in the formation of H+ ions. Therefore, the concentration of H+ in a 0.070 M HCl solution is 0.070 M.

Now, we need to find the concentration of HF that produces the same concentration of H+ ions. HF is a weak acid, and it undergoes partial dissociation in water. The dissociation of HF can be represented as follows:

HF (aq) ⇌ H+ (aq) + F- (aq)

The equilibrium constant expression for this dissociation can be written as:

Ka = [H+][F-] / [HF]

Given that Ka = 7.2 × 10^(-4), and we want the same concentration of H+ ions as in the 0.070 M HCl solution, which is 0.070 M, we can set up the equation:

(0.070)(x) / (0.070 - x) = 7.2 × 10^(-4)

Solving this equation will give us the concentration of HF that corresponds to the same pH as the 0.070 M HCl solution.

However, the given options do not include the calculated concentration value. Therefore, we cannot determine the exact concentration of HF based on the provided options.

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the binding energy for helium-4 is j/mol. calculate the atomic mass of . the proton mass is 1.00728 u, neutron mass is 1.00866 u, and electron mass is u.

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The atomic mass of helium-4 is approximately 4.03188 u. To calculate the atomic mass of helium-4, we need to first convert the binding energy from joules per mole to unified atomic mass units (u).


It seems like some information is missing in your question. To calculate the atomic mass of helium-4, we will need the binding energy in joules per mole (J/mol) and the electron mass in atomic mass units (u).
binding energy in u = (binding energy in j/mol) x (6.02214 x 10^23 u/mol)
binding energy in u = 4.258 x 10^12 u
The mass of 2 electrons is 2 x u = 0.0005486 u.
total mass = 4.03243 u
mass defect = total mass - actual mass
actual mass = mass of 2 protons + mass of 2 neutrons
actual mass = 4.03188 u
mass defect = 0.00055 u
binding energy = (mass defect) x (speed of light)^2
4.258 x 10^12 u = (0.00055 u) x (299792458 m/s)^2
atomic mass = (total mass) - (mass defect)
atomic mass = 4.03188 u

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how many grams of sucrose (c12h22o11) contain 4.060×1024molecules of sucrose?

Answers

To find the grams of sucrose containing 4.06 × 10²⁴ molecules, you can use the following steps:

1. Calculate the molecular weight of sucrose (C12H22O11):
  Molecular weight = (12 × 12.01) + (22 × 1.01) + (11 × 16.00) = 342.3 g/mol

2. Use Avogadro's number (6.022 × 10²³) to determine the number of moles of sucrose:
  Moles of sucrose = (4.06 × 10²⁴ molecules) / (6.022 × 10²³ molecules/mol) = 6.75 mol

3. Calculate the mass of sucrose in grams:
  Mass of sucrose = (6.75 mol) × (342.3 g/mol) = 2310.525 g

So, 2310.525 grams of sucrose contain 4.06 × 10²⁴ molecules of sucrose.

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A voltaic cell consists of a Ag/Ag^+ electrode (E° = 0.80 V) and a Fe^2+/Fe^3+ electrode (E° = 0.77 V) with the following initial molar concentrations: [Fe^2+] = 0.30 M; [Fe^3+] = 0.10 M; [Ag^+] = 0.30 M. What is the equilibrium concentration of Fe^3+? (Assume the anode and cathode solutions are of equal volume, and a temperature of 25°C.)
The answer is 0.17 M
Please show all work

Answers

The equilibrium concentration of [tex]Fe^{3+}[/tex] is 0.17 M.

The first step is to write the balanced oxidation and reduction half-reactions:

Oxidation half-reaction: [tex]Fe^{2+} = Fe^{3+} + e-[/tex] (E° = -0.77 V)

Reduction half-reaction: [tex]Ag^+ + e- = Ag[/tex] (E° = 0.80 V)

Next, we need to determine the overall cell reaction and its standard potential:

[tex]Fe^{2+} + Ag^+ = Fe^{3+} + Ag[/tex] (E°cell = E°reduction - E°oxidation)

E°cell = (0.80 V) - (-0.77 V) = 1.57 V

Since the cell reaction is spontaneous (E°cell is positive), the equilibrium will favor the products. Therefore, the concentration of [tex]Fe^{3+}[/tex] will increase at equilibrium, while the concentrations of [tex]Fe^{2+}[/tex] and [tex]Ag^+[/tex] will decrease.

Let x be the equilibrium concentration of [tex]Fe^{3+}[/tex]. At equilibrium, the concentrations of [tex]Fe^{2+}[/tex] and [tex]Ag^+[/tex] will decrease by x, since one mole of [tex]Fe^{3+}[/tex] is formed for every one mole of [tex]Fe^{2+}[/tex] that is oxidized, and one mole of [tex]Ag^+[/tex] is reduced to Ag for every one mole of electron transferred.

Thus, the equilibrium concentrations of the species are:

[[tex]Fe^{2+}[/tex]] = 0.30 - x M

[[tex]Fe^{3+}[/tex]] = 0.10 + x M

[[tex]Ag^+[/tex]] = 0.30 - x M

To find the equilibrium concentration of [tex]Fe^{3+}[/tex], we need to use the expression for the standard cell potential and the equilibrium constant:

E°cell = (RT/nF) ln Keq

Keq = e^{(nE°cell/RT)}

where R is the gas constant (8.314 J/K·mol), T is the temperature in Kelvin (298 K), n is the number of electrons transferred (in this case, n = 1), and F is the Faraday constant (96,485 C/mol).

Substituting the given values, we get:

Keq = e^((1)(1.57 V)/(8.314 J/K·mol × 298 K × 96,485 C/mol)) = 1.46 × 10^15

At equilibrium, the reaction quotient Qc is equal to Keq:

[tex]Qc = [Fe^{3+}][Ag^+] / [Fe^{2+}][/tex]

Qc = (0.10 + x)(0.30 - x) / (0.30 - x)

Simplifying and setting Qc = Keq, we get a quadratic equation:

1.46 × 10^15 = (0.10 + x)(0.30 - x) / (0.30 - x)

Solving for x using the quadratic formula, we get:

x = 0.17 M

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An electrochemical cell used for the "Quant" purpose (that is, to find unknown concentration of the analyte) is based on: A. a battery B. an electrolytic cell C. neither A nor B D. either A or B E. can not be decided

Answers

The answer to your question is D, either A or B. An electrochemical cell can be used for quantitative analysis, also known as "quant" analysis, to determine the concentration of an unknown analyte.

Both batteries and electrolytic cells can be used for this purpose, depending on the specific setup of the electrochemical cell. Therefore, the answer is that it could be either A or B.

An electrochemical cell used for the "Quant" purpose (that is, to find unknown concentration of the analyte) is based on: C. neither A nor B. It is actually based on a galvanic cell or a potentiometric cell, which measure the potential difference between two half-cells in order to determine the concentration of the analyte.

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What volume in liters of H2 gas would be produced by the complete reaction of 2.93 g of Al solid at STP according to the following reaction? Remember 1 mol of an ideal gas has a volume of 22.4 L at STP. 2 Al(s) + 6 HCI (aq) → 2 AICI: (aq) + 3 H2 (9)

Answers

The volume of H2 gas produced from the reaction of 2.93 g of Al at STP can be calculated using stoichiometry and the ideal gas law.

What determines the volume of H2 gas produced?

To determine the volume of H2 gas produced when 2.93 g of Al reacts at STP (standard temperature and pressure), we can use stoichiometry and the ideal gas law.

First, we need to convert the mass of Al to moles. This is done by dividing the given mass by the molar mass of Al. Once we have the moles of Al, we can use the stoichiometric coefficients from the balanced equation to find the moles of H2 gas produced. In this case, for every 2 moles of Al, 3 moles of H2 gas are produced according to the balanced equation.

Next, we can apply the ideal gas law, which states that 1 mole of an ideal gas occupies a volume of 22.4 L at STP. By multiplying the moles of H2 gas by the molar volume of 22.4 L/mol, we can determine the volume of H2 gas produced in liters at STP.

Therefore, by following these steps and applying the appropriate calculations, we can determine the volume of H2 gas produced from the given mass of Al at STP.

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The d-d transition in [Ti(H2O)6]3+(aq) produces an absoption maximum at 500 nm. What is the magnitude of DELTA for this complex in kJ/mol?
HINT: E=h v and c =LAMBDA v
Enter answer using 3 sig figs, doNOT include decimal point

Answers

The magnitude of Δ for this complex is 2.40 x 10^4 kJ/mol.

We can use the relation between energy (E) and frequency (v) of light:

E = h*v

where h is the Planck's constant.

The frequency of light can be related to its wavelength (λ) and speed of light (c) as:

v = c/λ

where c is the speed of light.

We know that the absorption maximum for the d-d transition in [tex][Ti(H_2O)_6]^{3+}[/tex]occurs at a wavelength of 500 nm. Therefore, the frequency of the absorbed light is:

v = c/λ = (3.00 x 10^8 m/s) / (500 x 10^-9 m) = 6.00 x 10^14 Hz

The energy of the absorbed light can be calculated using the first equation:

E = hv = (6.626 x 10^-34 Js) * (6.00 x 10^14 Hz) = 3.98 x 10^-19 J

We can convert this energy to kilojoules per mole using the Avogadro's number:

3.98 x 10^-19 J * (6.02 x 10^23 mol^-1) / 1000 J kJ^-1 = 2.40 x 10^4 kJ mol^-1

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The magnitude of DELTA for the d-d transition in [Ti(H2O)6]3+(aq) is 26.4 kJ/mol. To calculate DELTA, we first need to calculate the frequency of the absorbed light

To calculate DELTA, we first need to calculate the frequency of the absorbed light using the formula E = hν, where E is the energy of the absorbed light, h is Planck's constant, and ν is the frequency of the light.

We can then use the formula c = λν, where c is the speed of light and λ is the wavelength of the absorbed light, to calculate the frequency. The wavelength of the absorbed light is given as 500 nm. Using these equations, we can calculate the frequency of the absorbed light to be 6.0 x 10^14 s^-1.

Next, we use the equation DELTA = hc/λ, where h is Planck's constant, c is the speed of light, and λ is the wavelength of the absorbed light, to calculate DELTA.

Substituting the values into the equation, we get DELTA = (6.626 x 10^-34 J s)(3.00 x 10^8 m/s)/(500 x 10^-9 m) = 39.8 x 10^-20 J. Converting the result to kJ/mol using Avogadro's number, we get 26.4 kJ/mol.

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a solution in which the molar analytical concentration of cu(no3)2 is m, that for is m (), and the ph is fixed at 4.00. potential = 0.256 v

Answers

Cu(NO3)2 with molar analytical concentration "m" has a potential of 0.256 V at fixed pH of 4.00. No information provided for "is m ()".

The given solution contains Cu(NO3)2 at a concentration of "m" with a fixed pH of 4.00, resulting in a potential of 0.256 V. The potential of a solution depends on the concentration and identity of the ions present, as well as the pH of the solution. The information provided is not sufficient to determine the concentration or identity of the second species "is m ()".

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write a balanced half-reaction describing the oxidation of solid calcium to aqueous calcium cations.

Answers

The balanced half-reaction for the oxidation of solid calcium to aqueous calcium cations is: Ca(s) → Ca²⁺(aq) + 2e⁻

The oxidation of solid calcium to aqueous calcium cations can be represented by the following balanced half-reaction:
Ca(s) → Ca2+(aq) + 2e-
In this half-reaction, solid calcium (Ca) loses two electrons (2e-) to form aqueous calcium cations (Ca2+). This process is an example of oxidation, which involves the loss of electrons by a substance.

To balance this half-reaction, we need to make sure that the number of electrons lost by the reactant (Ca) is equal to the number of electrons gained by the product (2e-). In this case, the coefficient of the electrons (2) already balances the equation. Overall, this half-reaction shows that solid calcium undergoes oxidation to form aqueous calcium cations by losing two electrons.

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The oxidation of solid calcium to aqueous calcium cations can be described by the following balanced half-reaction: Ca(s) → Ca2+(aq) + 2e-

In this reaction, solid calcium (Ca) loses two electrons and is oxidized to form aqueous calcium cations (Ca2+). This reaction occurs in aqueous solutions where the calcium ions can dissociate from the solid calcium and enter into the solution as hydrated cations.
It is important to note that this reaction only describes the oxidation half-reaction of the overall redox reaction. The reduction half-reaction would involve the gain of electrons by another species in the reaction.
In summary, the balanced half-reaction for the oxidation of solid calcium to aqueous calcium cations is Ca(s) → Ca2+(aq) + 2e-. This reaction involves the loss of electrons by the solid calcium and the formation of hydrated calcium cations in an aqueous solution.

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Is your experimental yield of alum greater than less than or equal to the theoretical yield? Give specific reasons as to why this might the case.

Answers

The experimental yield of alum may be greater than, less than, or equal to the theoretical yield depending on factors such as reactant purity, reaction conditions, and product isolation techniques.

The theoretical yield of a chemical reaction is the maximum amount of product that can be obtained based on the stoichiometry of the reactants. It is calculated based on the balanced chemical equation and assumes that the reaction proceeds to completion without any side reactions, losses, or errors.

In contrast, the experimental yield is the actual amount of product obtained from a chemical reaction under real conditions. It is influenced by several factors, such as the purity of the reactants, the reaction conditions, the efficiency of the reaction, and the techniques used for product isolation and purification.

Therefore, the experimental yield of alum can be greater than, less than, or equal to the theoretical yield depending on these factors. For instance, if the reactants are impure or the reaction conditions are not optimal, the experimental yield may be lower than the theoretical yield due to incomplete reaction, side reactions, or losses.

On the other hand, if the reactants are pure and the reaction conditions are carefully controlled, the experimental yield may approach or exceed the theoretical yield. However, even under ideal conditions, it is rare for the experimental yield to match the theoretical yield due to experimental uncertainties and limitations.

In conclusion, the experimental yield of alum can vary from the theoretical yield depending on various factors, and the two values are not necessarily equal.

Careful experimental design and optimization can improve the yield, but some discrepancies are expected due to practical limitations and experimental uncertainties.

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how many of the following molecules have sp3 hybridization on the central atom? xecl4 cf4 sf4 c2cl2 A) 0 B) 4 C) 3 D) 2 E) 1

Answers

The correct answer is C) 3,  out of the given molecules, XeCl4, CF4, and SF4 have sp3 hybridization on the central atom, while C2Cl2 does not. The correct answer is C) 3.

In order to determine the hybridization of the central atom in each molecule, we need to first identify the number of electron groups around it (bonding pairs and lone pairs). For sp3 hybridization, there should be four electron groups.

Starting with XeCl4, we have one Xe atom and four Cl atoms. The Xe atom has eight valence electrons and each Cl atom has seven valence electrons. The molecule has a total of 36 valence electrons. The Xe atom forms four single bonds with the Cl atoms, resulting in four electron groups. Therefore, the Xe atom in XeCl4 has sp3 hybridization.

Moving on to CF4, we have one C atom and four F atoms. The C atom has four valence electrons and each F atom has seven valence electrons. The molecule has a total of 32 valence electrons. The C atom forms four single bonds with the F atoms, resulting in four electron groups. Therefore, the C atom in CF4 has sp3 hybridization.

For SF4, we have one S atom and four F atoms. The S atom has six valence electrons and each F atom has seven valence electrons. The molecule has a total of 34 valence electrons. The S atom forms four electron groups, including one single bond with each F atom and one lone pair. Therefore, the S atom in SF4 has sp3 hybridization.

Finally, for C2Cl2, we have two C atoms and two Cl atoms. Each C atom has four valence electrons and each Cl atom has seven valence electrons. The molecule has a total of 22 valence electrons. Each C atom forms two double bonds with the adjacent C and Cl atoms, resulting in only two electron groups around each C atom. Therefore, the C atoms in C2Cl2 do not have sp3 hybridization.

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label the reducing agent and the oxidizing agent, and describe the direction of the electron flow.

Answers

The reducing agent and oxidizing agent in a chemical reaction will be identified, along with the direction of electron flow.

In a chemical reaction, the reducing agent is the species that donates electrons, while the oxidizing agent is the species that accepts electrons. The direction of electron flow goes from the reducing agent to the oxidizing agent.

The reducing agent is typically a species that is easily oxidized, meaning it readily loses electrons. It undergoes oxidation itself and becomes oxidized in the process. The oxidizing agent, on the other hand, is easily reduced, meaning it readily gains electrons. It undergoes reduction itself and becomes reduced in the process.

The direction of electron flow can be visualized as a transfer of electrons from the reducing agent to the oxidizing agent. This transfer occurs as the reducing agent loses electrons, which are then gained by the oxidizing agent.

The electron flow follows the electrochemical gradient, moving from an area of higher electron density (the reducing agent) to an area of lower electron density (the oxidizing agent).

Understanding the roles of the reducing agent and oxidizing agent, as well as the direction of electron flow, is crucial in comprehending redox reactions and their associated chemistry.

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