Answer:
Answer: The final volume of the gas will be 8.07 L.
Approximate number of tubes Amelia can fill = 8.07 L/500 mL = 16.14 tubes.
Part A Classify these amino acids as acidic, basic, neutral polar, or neutral nonpolar Drag each item to the appropriate bin. Hints Reset Help -NH2 CH3 CH3 CH NH2 CH2 H,N-C-coo Acidic Basic Neutral polar Neutral nonpolar My Answers Give Up Part B Classify these amino acids as acidic, basic, neutral polar, or neutral nonpolar Drag each item to the appropriate bin. Hints Reset Help OH CH2 HON-C-COO H,N-C-COO Acidic Basic Neutral polar Neutral nonpolar
Amino acids as acidic, basic, neutral polar, or neutral nonpolar are
Part A: NH₂: Basic, CH₃: Neutral nonpolar, CH₃: Neutral nonpolar, CH: Neutral nonpolar, NH₂: Basic, CH₂: Neutral nonpolar, H,N-C-coo: Acidic
Part B: OH: Neutral polar, CH₂: Neutral nonpolar, HON-C-COO: Acidic, H,N-C-COO: Acidic.
Acidic amino acids: These amino acids have a carboxyl group (COOH) in their side chain, which makes them acidic. They can donate a hydrogen ion (H+) and have a negative charge at physiological pH.
Basic amino acids: These amino acids contain an amino group (NH2 or NH3+) in their side chain, which makes them basic. They can accept a hydrogen ion (H+) and have a positive charge at physiological pH.
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you have an enzymatic reaction proceeding at the optimum ph and optimum temperature. you add a competitive inhibitor to the reaction and notice that the reaction slows down.
A competitive inhibitor competes with the substrate for binding during an enzymatic process by attaching to the enzyme's active site. When the inhibitor prevents the substrate from attaching and turning into product, the rate of the reaction decreases as a result.
The presence of the competitive inhibitor can still cause the reaction to slow down even though the pH and temperature are optimal for the reaction. This is because the inhibitor is attaching to the enzyme's active site, which is required for the reaction to take place. As a result, the enzyme cannot convert the substrate into the product as well as it might if the inhibitor were not present.
Increasing the amount of substrate such that it competes with the inhibitor for binding to the enzyme's active site can help overcome the inhibition. Another choice is to chemically or by employing an alternative enzyme that is unaffected by the inhibitor remove it from the reaction mixture.
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determine the ka value for an acid where a 0.22 m solution has a measured ph of 2.98. enter your answer in scientific notation with two significant figures.
The Ka value is 2.2x10⁻³ in scientific notation with two significant figures.
To explain in brief, Ka is the acid dissociation constant that measures the strength of an acid.
The formula is used to find the value of the Ka constant when we have the molar concentration and the pH of the solution.
The calculation is done as follows:
Ka = [H₃O⁺]² / [HA]
Here, H₃O⁺ is the hydronium ion, which is formed when an acid is dissolved in water, and HA represents the acid.
Therefore, in order to determine the Ka value, we need to find the concentration of H₃O⁺ ions in the given solution.
Since pH = - log[H₃O⁺],
we can calculate [H₃O⁺] as follows:
2.98 = -log[H₃O⁺] = 10⁻²⁹⁵ = 1.28 × 10⁻³ M
Now, we can use the formula to find Ka:
Ka = [H₃O⁺]² / [HA]
= (1.28 × 10⁻³))² / 0.22
= 2.2 × 10⁻⁵
Therefore, the Ka value for the given acid is 2.2 × 10⁻⁵.
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Will the following reaction result in a precipitate? If so, identify the precipitate. K3PO4 + Cr(NO3)+ 3 KNO3 + CrPO4 a. No, a precipitate will not form b. Yes, CrPO4 will precipitate c. Yes, KNO3 will precipitate
Yes, a precipitate will form in this reaction. The precipitate that will form is CrPO₄.
The reaction is a double displacement reaction between two soluble salts, K₃PO₄ and Cr(NO₃)₃, with the two potassium nitrate (KNO₃) ions acting as a common ion. In a double displacement reaction, the cations and anions of the two reactants switch places, forming two new products.
In this reaction, the cations, K⁺ and Cr³⁺, will switch places, and the anions, PO₄³⁻ and NO₃⁻ will switch places, resulting in the formation of two new products: KNO₃and CrPO₄.
The balanced chemical equation for the reaction between K₃PO₄ and Cr(NO₃)₃ is given below:
K₃PO₄ + Cr(NO₃)₃ → 3KNO₃ + CrPO₄ (s)
We need to identify the product which is an insoluble solid. According to the solubility rules, most nitrates are soluble in water, and only a few nitrates of metal cations are insoluble. Potassium nitrate (KNO₃ ) is a water-soluble salt, so it cannot be the product that forms a precipitate in the above reaction.
Chromium phosphate (CrPO₄), on the other hand, is a slightly soluble salt and can be expected to form a precipitate. Hence, the precipitate formed as a result of the reaction between K₃PO₄ and Cr(NO)₃ is CrPO₄ (chromium phosphate).
Therefore, option (b) is the correct answer to this question, and the precipitation reaction will be represented as:
K₃PO₄ + Cr(NO₃)₃ → 3KNO₃ + CrPO₄ (s)
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a 30.00-ml sample of 0.125 m hcooh is being titrated with 0.175 m naoh. what is the ph after 21.4 ml of naoh has been added? ka of hcooh
The pH of the solution after 21.4 mL of NaOH has been added is 3.75.
What is the pH of the solution?
HCOOH (formic acid) is a weak acid, so we can use the Henderson-Hasselbalch equation to calculate the pH of the solution at any point during the titration.
The Henderson-Hasselbalch equation is:
pH = pKa + log([A-]/[HA])
where;
pKa is the acid dissociation constant, [A-] is the concentration of the conjugate base (in this case, HCOO-), and [HA] is the concentration of the acid (in this case, HCOOH).At the beginning of the titration, before any NaOH has been added, the solution contains only HCOOH and its conjugate base, HCOO-.
The concentration of HCOOH is 0.125 M, and the concentration of HCOO- is 0.
We can calculate the pH using the Henderson-Hasselbalch equation:
pH = pKa + log([A-]/[HA])
pH = -log(1.8 x 10⁻⁴) + log(0/0.125)
pH = 2.74
At the equivalence point, all of the HCOOH has been converted to HCOO- by the addition of NaOH, so the pH will be determined by the concentration of the resulting salt. Since HCOO- is the conjugate base of a weak acid, it will undergo hydrolysis to a small extent, producing OH- ions and raising the pH.
However, we are not at the equivalence point yet.
To find the pH after 21.4 ml of NaOH has been added, we need to first calculate how many moles of NaOH have been added. We know the concentration of the NaOH solution (0.175 M) and the volume that has been added (21.4 mL = 0.0214 L), so we can calculate the number of moles of NaOH:
moles NaOH = concentration x volume
moles NaOH = 0.175 M x 0.0214 L
moles NaOH = 0.003745
Since NaOH reacts with HCOOH in a 1:1 ratio, we know that 0.003745 moles of HCOOH have been neutralized.
This means that there are 0.125 - 0.003745 = 0.121255 moles of HCOOH remaining in the solution.
We also know that 21.4 mL of NaOH has been added to 30.00 mL of HCOOH, so the total volume of the solution is now 51.4 mL.
We can use the moles of HCOOH and the total volume to calculate the concentration of HCOOH:
concentration = moles/volume
concentration = 0.121255/0.0514
concentration = 2.357 M
We can use this concentration and the concentration of the conjugate base (which is equal to the number of moles of NaOH added divided by the total volume) to calculate the pH using the Henderson-Hasselbalch equation:
pH = pKa + log([A-]/[HA])
pH = -log(1.8 x 10⁻⁴) + log(0.003745/2.357)
pH = 3.75
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The complete question is below:
a 30.00-ml sample of 0.125 m hcooh is being titrated with 0.175 m naoh. what is the ph after 21.4 ml of naoh has been added? ka of hcooh is 1.8 x 10⁻⁴
what needs to increase in order to make a substance more soluble?
By supplying more energy to counteract intermolecular interactions and increasing contact between solvent and solute, raising temperature, agitation, surface area, or lowering particle size can enhance solubility.
A substance's solubility refers to its capacity to dissolve in a solvent. Intermolecular forces between the solute particles are broken during the dissolving process, and new connections with the solvent molecules are created. Solubility can be raised by adding extra energy to break through these intermolecular connections. Although agitation and expanding surface area improve the contact between the solvent and solute, rising temperature releases more thermal energy to break the intermolecular interactions. By increasing surface area per unit volume, particle size reduction increases interaction with the solvent. Moreover, by giving the solute additional solvation sites, more solvents or surfactants can be added to increase solubility.
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Determine the percent yield of diacetyl ferrocene in the following unbalanced reaction using the data provided. Record your answer on the bubble sheet using the second significant figure. AICI Ferrocene MW: 186.03 used: 210. mg Acetyl Chloride MW: 78.50 Density: 1.104 g/ml used: 155 uL Diacetyl Ferrocene MW: 270.10 isolated: 225 mg. multiple choice: O A. 3 B. 4 C. 5 D. 6
The percent yield of diacetyl ferrocene in the given unbalanced reaction is 144.5%. The answer is option A. 3.
Explanation : To calculate the percent yield of diacetyl ferrocene in the following unbalanced reaction, use the following formula:
Percent Yield = (Mass of Isolated Product / Theoretical Mass of Product) x 100%
To find the Theoretical Mass of Product, use the following formula:
Theoretical Mass of Product = (MW of Reactant * Mass of Reactant Used) / MW of Product
Substituting in the values provided:
Theoretical Mass of Product = (186.03 * 210mg) / 270.10 = 155.46mg
Percent Yield = (225mg / 155.46mg) x 100% = 144.48%
Therefore, the percent yield of diacetyl ferrocene in the given unbalanced reaction is 144.5%.
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During _____ , the temperature _____ but the entropy change can be large as molecules _____ their degrees of freedom and motion. Options: a phase change, remains constant, increases, heating, raises, reaction, decrease, falls
During heating, the temperature raises but the entropy change can be large as molecules increase their degrees of freedom and motion.
Entropy is a thermodynamic quantity that measures the disorder or randomness of a system. The greater the number of ways that energy can be distributed throughout the system, the higher the entropy.
Heat refers to the energy that is transferred from one body to another when they are at different temperatures. When energy is transferred, it moves from a high-energy state to a low-energy state, and the process continues until the temperatures of the two bodies become the same. During heating, the temperature raises but the entropy change can be large as molecules increase their degrees of freedom and motion.
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(a) 0.12 g of magnesium reacted to produce 0.20 g of magnesium oxide.
Calculate the number of moles of oxygen gas (O₂) that reacted.
Relative atomic mass (A): 0 = 16
(b)
The student repeated the experiment without a lid on the crucible.
Suggest why the mass of magnesium oxide produced would be different without a lid on the crucible.
(a) The number of moles of oxygen gas (O₂) that reacted is 0.00325 mol.
(b) When the experiment is repeated without a lid on the crucible, the magnesium oxide produced will react with any oxygen present in the air.
What is the number of moles of oxygen?(a) To calculate the number of moles of oxygen gas (O₂) that reacted, we need to first determine the number of moles of magnesium that reacted using its atomic mass:
Mass of magnesium (Mg) = 0.12 g
Atomic mass of Mg = 24.31 g/mol (from periodic table)
Number of moles of Mg = Mass of Mg / Atomic mass of Mg
= 0.12 g / 24.31 g/mol
= 0.00494 mol
The balanced chemical equation for the reaction between Mg and O₂ to produce MgO is:
2Mg + O₂ → 2MgO
From the equation, we can see that 2 moles of Mg react with 1 mole of O₂ to produce 2 moles of MgO.
Therefore, the number of moles of O₂ that reacted can be calculated as follows:
Number of moles of MgO produced = Mass of MgO / Molar mass of MgO
= 0.20 g / (24.31 g/mol + 16.00 g/mol)
= 0.00650 mol
Since 2 moles of MgO are produced from 1 mole of O₂, the number of moles of O₂ that reacted can be calculated as:
Number of moles of O₂ = Number of moles of MgO produced / 2
= 0.00650 mol / 2
= 0.00325 mol
(b) When the experiment is repeated without a lid on the crucible, the magnesium oxide produced will react with any oxygen present in the air. This will cause the mass of magnesium oxide produced to be greater than when the experiment was conducted with a lid on the crucible, as more oxygen will react with the magnesium.
Additionally, any water vapor or other gases present in the air may also react with the magnesium oxide, further affecting the mass of the final product. Therefore, the mass of magnesium oxide produced will be different without a lid on the crucible due to the presence of additional reactants in the air.
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what are the proteins that help our bodies break down chemicals for energy usage?
Enzymes, and transport proteins, including mitochondrial proteins are among the proteins that aid in the chemical oxidation process for the production of energy.
The human body uses a variety of protein types to break down molecules for energy production.
The class of biological catalysts that speed up chemical processes in the body includes enzymes. Enzymes take part in several metabolic processes that transform proteins, lipids, and carbohydrates into simpler molecules that can be converted to energy.
The transport proteins are a different group of proteins involved in energy metabolism. These proteins help molecules traverse cell membranes so they can go to the places where energy is produced, such as glucose and amino acids.
Finally, there are the mitochondrial proteins, which are located in the mitochondria, the organelles responsible for energy production in the body. These proteins play a critical role in the electron transport chain and oxidative phosphorylation, which generate ATP, the main energy currency of the body.
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what type of radioactive decay process will occur when an isotope has a greater proton to neutron ratio?
When an isotope has a greater proton to neutron ratio, the type of radioactive decay process that will occur is beta decay.
Radioactive decay is the process by which an atomic nucleus breaks down, releasing radiation in the form of particles or waves. This results in the decay of a radioactive element into a different element.
The following are the three major forms of radioactive decay:
Alpha decay, Beta decay, Gamma decay.
Alpha decay is the process by which an alpha particle is released by an atomic nucleus. The mass of the nucleus decreases by four units, while the atomic number decreases by two units.
Beta decay is the type of radioactive decay that occurs when an isotope has a greater proton to neutron ratio. The decay of a neutron into a proton and an electron is referred to as beta decay. The mass number of the nucleus stays constant, but the atomic number increases by one unit.
The radioactive decay process that occurs when an isotope emits a gamma ray is known as gamma decay. A gamma ray is a high-energy electromagnetic wave that carries no mass and no charge. The atomic number and mass number of the nucleus are both unchanged as a result of gamma decay.
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buffers are made from weak conjugate acid-base pairs. in part 1 of this experiment, a solution of weak acid is mixed with another solution of weak acid to which the strong base naoh has been added.
Buffers are made from weak conjugate acid-base pairs. In part 1 of this experiment, a solution of weak acid is mixed with another solution of weak acid to which the strong base NaOH has been added.
What is a buffer?
A buffer is a solution that can resist changes in pH when acid or base is added. They are used to keep the pH of solutions stable in various chemical and biological systems, including industrial processes, drugs, and the human body. A buffer is a mixture of a weak acid and its conjugate base or a weak base and its conjugate acid.The following are the features of a buffer:It is a solution that resists changes in pH.It consists of a weak acid and its corresponding base.The buffering effect is maximized when the ratio of weak acid to its corresponding base is 1:1.A buffer resists pH changes in either direction, and it has a maximum buffering capacity when pH is within one unit of its pKa. The buffering capacity of the solution is increased by increasing the buffer concentration.
A weak acid is one that only partially dissociates in water to produce hydrogen ions (H+) and anions. Its conjugate base is the species that results from the removal of a proton from the acid. As an example, ammonia (NH3) is a weak base, and its conjugate acid is ammonium (NH4+). The reverse reaction produces the acid and base when the acid is added to water.
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A substance that cannot be decomposed by a simple chemical process into two or more different substance is ______(A) molecule(B) element(C) mixture(D) compound
Explanation:
An element is a pure substance that cannot be separated into simpler substances by chemical or physical means.
Which of the following bonds would be the most polar without being considered ionic?
a. F-H
b. Na-F
c. S-H
d. Cl-H
e. O-H
The bond which would be the most polar without being considered ionic is O-H. Thus, option e is correct.
What is a polar bond?
A polar bond is defined as a bond between two atoms where there is an uneven distribution of electrons between the atoms.
What is an ionic bond?
Ionic bonds are bonds that occur between two atoms when one atom donates its electron to another atom, resulting in the two atoms being electrically attracted to each other.
Polar covalent bonds occur when electrons are unequally shared between two atoms.
This occurs when two atoms have different electronegativity values, meaning that one atom pulls more strongly on the shared electrons than the other atom.
Thus, the O-H bond would be the most polar without being considered ionic.
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A scientist did a test to compare two substances: substance Q and substance R.
At room temperature, both substances are liquid. When the scientist transferred
the same amount of energy out of both substances, only one substance
changed phase while the other did not. Which substance changed phase, and
how did it change? *
Substance Q changed phase because the attraction of the molecules was able to
overcome their slower movement. Its molecules now move in place.
Substance Q changed phase because the strong attraction between molecules made
their movement slower. Its molecules now move in place.
Substance R changed phase because the weak attraction between molecules let them
move faster. Its molecules now move around each other.
Substance R changed phase because the attraction was able to overcome the slower
molecules. Its molecules now move away from each other.
Based on the information provided, the correct answer is:
Substance R changed phase because the weak attraction between molecules let them move faster. Its molecules now move around each other.
This is because when the scientist transferred the same amount of energy out of both substances, only one substance changed phase while the other did not. This indicates that one of the substances has a lower boiling point than the other. Since both substances are liquids at room temperature, it means that the substance that changed phase must have vaporized (turned into gas) while the other substance did not.
Substance R must have a weaker intermolecular force of attraction between its molecules compared to Substance Q. This means that Substance R has a lower boiling point, which allowed its molecules to move around each other and form a gas phase when energy was transferred out of it. In contrast, Substance Q remained in the liquid phase because its molecules had stronger intermolecular forces of attraction that held them together.
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what is the empirical formula of a compound composed of 25.9 g of potassium ( k ) and 5.30 g of oxygen ( o )? insert subscripts as needed.
The empirical formula of a compound composed of 25.9 g of potassium (K) and 5.30 g of oxygen (O) is K2O. To calculate the empirical formula, we need to convert the given mass of the elements into moles. The molar mass of potassium is 39.09 g/mol and the molar mass of oxygen is 16.00 g/mol. Thus, 25.9 g of potassium is equivalent to 0.66 mol, and 5.30 g of oxygen is equivalent to 0.33 mol. To find the empirical formula, divide the moles of each element by the smallest number of moles, which is 0.33 mol in this case. This yields the ratio of 2:1 for potassium and oxygen, thus the empirical formula is K2O.
Explanation: The empirical formula of a compound composed of 25.9 g of potassium (K) and 5.30 g of oxygen (O) is K2O. Empirical formula is defined as the simplest formula of a compound that shows the ratio of atoms present in the compound. It can be determined by finding the lowest whole number ratio of atoms in the compound.
To determine the empirical formula of the compound containing potassium and oxygen, the following steps can be followed:
1. Convert the given mass of each element into moles by using the molar mass of each element:
Molar mass of K = 39.10 g/mol
Molar mass of O = 16.00 g/mol
Number of moles of K = 25.9 g / 39.10 g/mol = 0.662 moles
Number of moles of O = 5.30 g / 16.00 g/mol = 0.331 moles
2. Find the mole ratio of the two elements by dividing each value by the smaller number of moles:
Mole ratio of K : O = 0.662/0.331 = 2 : 1
3. Write the empirical formula using the mole ratio as subscripts:
Empirical formula = K2O
Therefore, the empirical formula of the compound composed of 25.9 g of potassium (K) and 5.30 g of oxygen (O) is K2O.
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Which of the following is not a characteristic of rivers and streams?
a.
vary in size
b.
mainly saltwater
c.
part of the water cycle
d.
flow toward other bodies of water
Please select the best answer from the choices provided
A
B
C
D
Answer:
b. mainly saltwater
Explanation:
The characteristic that is not true for rivers and streams is option b - mainly saltwater. Rivers and streams are freshwater bodies of water that flow from higher elevations to lower elevations, and eventually empty into larger bodies of water such as lakes, oceans, or other rivers. They are a vital component of the water cycle, and can vary in size from small streams to large rivers that span entire continents.
Answer:
B
Explanation:
Saltwater is not a characteristic of rivers and streams. Rivers and streams are typically freshwater systems, with only a few exceptions where they may be brackish or slightly salty due to their proximity to the ocean or underground salt deposits.
when 2 mol of potassium chlorate crystals decomposes to potassium chloride crystals and oxygen gas at constant temperature and pressure, 78.0 kj of heat is given off. write a thermochemical equation for this reaction.
Thermochemical equation for the chemical reaction is: 2KClO₃(s)→ 2KCl(s) + 3O₂(g), ΔH = -78.0kJ.
What is thermochemical equation?Potassium chlorate (KClO₃) decomposes into potassium chloride (KCl) and oxygen gas (O₂). When 2 mol of KClO₃ crystals decompose to KCl crystals and O₂ gas at constant temperature and pressure, 78.0 kJ of heat is given off. KClO₃(s) → KCl(s) + 3/2 O₂(g)
For every mole of KClO₃(s), there is the production of one mole of KCl(s) and 1.5 moles of O₂(g).Therefore, for the formation of 2 mol of KClO₃(s), the quantities of the products are: 2 mol KClO₂(s) → 2 mol KCl(s) + 3 mol O₂(g)
The thermochemical equation for the reaction is:2KClO₃(s) → 2KCl(s) + 3O₂(g), ΔH = -78.0kJ
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which simple distillation resulted in a better separation of the two liquids- cyclohexane:toluene or cyclohexane:p-xylene? was this what you expected based on the boiling points of the liquids? explain.
The simple distillation of cyclohexane: toluene resulted in a better separation of the two liquids than cyclohexane: p-xylene, due to the boiling points of these liquids.
In the distillation process, the mixture of liquids is heated in a flask, and the vapors of one liquid are separated from the mixture and then collected in another flask, as it reaches the condenser. The vapors condense to liquid form as they come in contact with the cold walls of the condenser.
The separation process in simple distillation depends on the difference in the boiling points of two liquids. In the given question, the boiling point of cyclohexane is 80.7°C, the boiling point of toluene is 110.6°C, and the boiling point of p-xylene is 138.4°C.
As we can see, toluene has a higher boiling point than cyclohexane, while p-xylene has a higher boiling point than toluene. Therefore, the boiling point difference between cyclohexane and toluene is 29.9°C, while the boiling point difference between cyclohexane and p-xylene is 57.7°C.
Thus, it is expected that simple distillation of cyclohexane: toluene resulted in a better separation of the two liquids than cyclohexane: p-xylene. Because the boiling point difference of cyclohexane: toluene is less than that of cyclohexane: p-xylene.
The difference in the boiling points of two liquids is a crucial factor in the separation of two liquids through simple distillation. The smaller the boiling point difference between the two liquids, the better is the separation through simple distillation. Thus, the simple distillation of cyclohexane: toluene resulted in better separation than cyclohexane: p-xylene.
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explain why the ph of 0.1 m ethanol is higher than the ph of 0.1 m acetic acid. draw structures to support your explanation.
The pH of 0.1 M ethanol is higher than the pH of 0.1 M acetic acid is because ethanol is a neutral molecule while acetic acid is a weak acid.
What are the effects of change in pH on different molecules?The pH of 0.1 M ethanol is higher than the pH of 0.1 M acetic acid because ethanol is a neutral molecule and does not donate or accept protons, while acetic acid is a weak acid that can donate a proton to water, creating hydronium ions (H₃O⁺) and decreasing the pH.
Here are the structures of ethanol and acetic acid to support this explanation:
Ethanol (CH₃CH₂OH):
H H
| |
H-C-C-OH
| |
H H
Acetic Acid (CH₃COOH):
H O
| ||
H-C-C-O-H
|
H
In acetic acid, the carboxylic acid group (-COOH) can donate a proton (H⁺) to water, which increases the concentration of hydronium ions (H₃O⁺) in the solution, leading to a lower pH:
CH₃COOH + H₂O → CH₃COO⁻ + H₃O⁺
Ethanol, on the other hand, does not have an acidic hydrogen and will not donate protons to water, so its pH remains neutral (pH around 7).
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oxalic acid, which is present in rhubarb, was found to consist of 26.68% c, 2.24% h, and 71.08% o by mass. find the empirical formula for oxalic acid.
The empirical formula for oxalic acid is C2H2O2.
Oxalic acid, which is present in rhubarb, was found to consist of 26.68% C, 2.24% H, and 71.08% O by mass.
What is the empirical formula for oxalic acid?Empirical formula is the simplest formula that represents the composition of a compound in terms of atoms, and it can be obtained by calculating the ratio of atoms of each element in the compound.
The empirical formula of oxalic acid can be found by assuming 100 g of the compound so that the mass percent can be expressed as grams of each element. In the next step, these grams will be converted into moles for each element using their molar mass. The empirical formula will then be the ratio of atoms for each element in the compound.
Let's find out the number of moles of each element in oxalic acid.
C = 26.68 g = 26.68 / 12.01 = 2.22 molH = 2.24 g = 2.24 / 1.01 = 2.22 molO = 71.08 g = 71.08 / 16.00 = 4.44 mol
As the atomic ratios are the same for all three elements, the empirical formula is C2H2O2, and this formula is also called the simplest formula for oxalic acid. The empirical formula for oxalic acid is C2H2O2.
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Complete the statement: The furanose form of fructose is generated by formation of a hemiketal involving the attack of the hydroxyl group on carbon _____ with carbon _____.
5; 2
2; 6
6; 1
6; 2
The furanose form of fructose is generated by formation of a hemiketal involving the attack of the hydroxyl group on carbon 2 with carbon 5 .
Option 1 is correct..
In its linear form, fructose has a ketone functional group on carbon 2 and five hydroxyl groups. In aqueous solutions, fructose can undergo a reversible intramolecular reaction between the ketone group and one of the hydroxyl groups, resulting in the formation of a cyclic hemiketal ring.
The furanose form of fructose is an important carbohydrate molecule that plays a key role in many biological processes, such as energy metabolism and signal transduction. It is also used as a sweetener in various food and beverage products. Correct option is: 1.
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-- The complete question is, Complete the statement: The furanose form of fructose is generated by formation of a hemiketal involving the attack of the hydroxyl group on carbon _____ with carbon _____.
1. 5; 2
2. 2; 6
3. 6; 1
4. 6; 2 --
You are measuring the speeds of two particles at the same conditions. The more massive particle will move...A. At a changing speed.B. At a quicker speedC. At a slower speedD. at the same speed as the less-massive particle
You are measuring the speeds of two particles at the same conditions. The more massive particle will move At a slower speed. The correct option is C. At a slower speed.
When you measure the speeds of two particles at the same conditions, the more massive particle will move at a slower speed than the less massive particle. This is because the speed of a particle is directly proportional to its kinetic energy. The more massive particle has more kinetic energy than the less massive particle. Thus, it will require more energy to move the more massive particle at the same speed as the less massive particle. Since the more massive particle has more inertia, it requires more energy to move it, and it moves slower. This is why the more massive particle will move at a slower speed than the less massive particle. The energy required to move an object increases with its mass.
Therefore, if two particles of different masses are at the same conditions, they will have different speeds. The less massive particle will move faster than the more massive particle. Thus, it can be concluded that the speed of a particle depends on its mass, and a more massive particle moves slower than a less massive particle.
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Select all that happen through stomata (assume this question is about a plant which is actively photosynthesizing during the day).
-Water vapors exit leaves.
-Carbon dioxide enters leaves.
-Oxygen exits leaves.
The things which happen through stomata during photosynthesis include water vapors exit the leaves, carbon dioxide enters the leaves, and oxygen exits the leaves for the formation of glucose (carbohydrate). Thus, all are correct options.
What are stomata?Stomata are small pores found on the surfaces of leaves, stems, and other plant parts that enable gas exchange between the atmosphere and the interior of the plant. During photosynthesis, stomata are important for regulating the flow of carbon dioxide and oxygen into and out of the plant. They also help to prevent water loss from the plant by controlling the opening and closing of the stomata.
When photosynthesis occurs, the plant uses energy from the sun to combine water and carbon dioxide to create glucose (a sugar) and oxygen. Stomata facilitate the uptake of carbon dioxide and the release of oxygen during photosynthesis. The water produced as a by-product of photosynthesis exits the plant through stomata via transpiration.
Thus, the three things that happen through stomata (assume this question is about a plant that is actively photosynthesizing during the day) are carbon dioxide entering the leaves, water vapors exiting the leaves, and oxygen exiting the leaves.
Therefore, all the options are correct.
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Does electronegativity increase as atomic radius increases?
Actually, when atomic radius grows, electronegativity often decreases.
The capacity of an atom to draw electrons into a chemical connection is known as electronegativity. The separation between the nucleus and the farthest electrons grows with increasing atomic radius. As a result, the nucleus's attraction to the electrons is reduced, making it more challenging for the atom to draw electrons to itself. The electronegativity values of bigger atoms are therefore often lower than those of smaller ones. Despite this general tendency, there are certain outliers since electronegativity also depends on other elements including nuclear charge and electron configuration. For instance, the rising nuclear charge in halogens causes the electronegativity to rise as the atomic radius falls.
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The base hydrolysis of ethyl propanoate followed by addition of acid produce what two organic products? A) propane and ethanol B) propanoic acid and ethane C) propanal and ethanol D) propanoic acid and ethanol E) propanoic acid and ethanal
Ethyl propanoate is hydrolyzed by a base, and then ethanol and propanoic acid are produced.
The carbonyl carbon of the ester is attacked by the nucleophilic component of the base during the hydrolysis of ethylpropanoate.
Acyl-oxygen bond fission occurs in the second phase.
07 base E-O CH₂ CH₂ CH₂ CH3 NaOH ci oro band CH₃-CH - 4 Lacyl, Loche Lochsch, oxygen breakdown CH₃ CH₂ For a HE, tchada tha
Propanoic acid and ethanol are formed during this procedure.
The molecule of propanoic acid has a carboxyl group. Additionally, the name ends with "-oic acid." These two details show that propanoic acid is carboxylic. The term ethanol ends in O-L, and its structure includes a hydroxy group. These two facts demonstrate that ethanol is an alcoholic beverage.
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________ metamorphism will occur where two blocks of rock are grinding against each other.
Fault zone metamorphism is the term used to describe the sort of metamorphism that would take place when two pieces of rock are rubbing against one another.
The heat and pressure produced as rocks along a fault plane rub up against one another is what causes fault zone metamorphism. Rocks are subjected to high pressure and temperature during fault zone metamorphism, which can result in recrystallization and mineral deformation. This process can result in the production of new minerals and the alignment of existing minerals in the pressure's direction, giving the rock known as mylonite a distinctive texture and fabric. Generally speaking, fault zone metamorphism is a form of dynamic metamorphism that results from tectonic action and is often connected.
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Given the kinetics data for each enzyme in the presence and absence of its inhibitor, determine the type of inhibition. Enzyme carbonic anhydrase + inhibitor A chymotrypsin + inhibitor B penicillinase + inhibitor C lysozyme + inhibitor D carboxypeptisase A + inhibitor E KM (MM) 8,000 12,000 5,000 5,000 50 30 6 15 3 Vmax (mmol/s) 600,000 600,000 100 75 2,000 1,500 0.5 0.5 1,000 800 Competitive Noncompetitive Uncompetitive
The type of inhibition for each enzyme in the presence of its inhibitor is as follows:
carbonic anhydrase + inhibitor A: competitive inhibition chymotrypsin + inhibitor B: noncompetitive inhibition penicillinase + inhibitor C: noncompetitive inhibition lysozyme + inhibitor D: noncompetitive inhibition carboxypeptidase A + inhibitor E: noncompetitive inhibitionWhat is enzyme inhibition?
Inhibitors that do not contribute to the development of the product carry out the inhibition. The inhibitors can impact both the substrate and the enzyme. The stoppage of enzyme activity is referred to as enzyme inhibition.
To determine the type of inhibition for each enzyme in the presence of its inhibitor, we can compare the kinetics data for the enzyme alone and in the presence of the inhibitor. Specifically, we can compare the changes in KM and Vmax values.
For carbonic anhydrase + inhibitor A: In the presence of inhibitor A, KM increases and Vmax remains constant. This indicates that inhibitor A is a competitive inhibitor. For chymotrypsin + inhibitor B: In the presence of inhibitor B, both KM and Vmax decrease. This indicates that inhibitor B is a noncompetitive inhibitor. For penicillinase + inhibitor C: In the presence of inhibitor C, both KM and Vmax decrease. This indicates that inhibitor C is a noncompetitive inhibitor. For lysozyme + inhibitor D: In the presence of inhibitor D, KM decreases and Vmax remains constant. This indicates that inhibitor D is an noncompetitive inhibitor. For carboxypeptidase A + inhibitor E: In the presence of inhibitor E, KM increases and Vmax decreases. This indicates that inhibitor E is a mixed inhibitor, which can be further classified as noncompetitive since KM decreases more than Vmax decreases.Therefore, the type of inhibition for each enzyme in the presence of its inhibitor is as follows:
carbonic anhydrase + inhibitor A: competitive inhibition chymotrypsin + inhibitor B: noncompetitive inhibition penicillinase + inhibitor C: noncompetitive inhibition lysozyme + inhibitor D: uncompetitive inhibition carboxypeptidase A + inhibitor E: noncompetitive inhibitionLearn more about enzyme inhibition on:
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n-octane gas (c8h18) is burned with 95 % excess air in a constant pressure burner. the air and fuel enter this burner steadily at standard conditions and the products of combustion leave at 265 0c. calculate the heat transfer during this combustion 37039 kj/ kg fuel
The heat transfer during the combustion of n-octane gas (C8H18) with 95% excess air in a constant pressure burner is 37039 kJ/kg fuel. This is calculated using the enthalpy of the formation of the products and reactants. The air and fuel enter the burner steadily at standard conditions, and the products of combustion leave at 265°C.
The enthalpy of combustion of the fuel is determined by subtracting the enthalpy of formation of the reactants from the enthalpy of formation of the products. The enthalpy of formation of the reactants is determined by multiplying the standard enthalpy of formation for each compound in the reaction by the number of moles of each compound and adding the result.
The enthalpy of formation of the products is determined by multiplying the standard enthalpy of formation for each compound in the reaction by the number of moles of each compound and adding the result. The heat transfer during combustion is then determined by subtracting the enthalpy of formation of the reactants from the enthalpy of formation of the products, resulting in 37039 kJ/kg fuel.
The heat transfer during the combustion of n-octane gas (C8H18) can be calculated using the formula Q = m × Cp × ΔT. Here, m is the mass of the fuel burnt, Cp is the specific heat capacity, and ΔT is the change in temperature. Let's substitute the given values: Mass of fuel burnt = 1 kg (since 37039 kJ/kg fuel is given)Cp of n-octane gas = 2.22 kJ/kg/K (given)ΔT = (265 - 25) = 240 K (since the temperature of products is given as 265°C = 538 K and standard temperature is 25°C = 298 K)Therefore, the heat transfer during combustion of n-octane gas is: Q = m × Cp × ΔT = 1 × 2.22 × 240 = 532.8 kJAnswer: The heat transfer during this combustion is 532.8 kJ.
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why can you consider the stoichiometric relationship between h2 and br2 when trying to calculate h2 and br2 in a quantity of hbr
The stoichiometric relationship between [tex]H_2[/tex] and [tex]Br_2[/tex] can be used to calculate the amount of [tex]H_2[/tex] and [tex]Br_2[/tex] in a given quantity of HBr because the ratio of [tex]H_2[/tex] to [tex]Br_2[/tex] in the reaction of [tex]H_2 + Br_2 \rightarrow 2HBr[/tex] has a 1:1 ratio of [tex]H_2[/tex] to [tex]Br_2[/tex], meaning that if there are 4 moles of HBr produced, there will be 2 moles of [tex]H_2[/tex] and 2 moles of [tex]Br_2[/tex].
The law of mass conservation is a fundamental principle in chemistry that says that the mass of the reactants and products should be equal.
The balanced equation for the reaction between H2 and Br2 to form HBr is as follows:
[tex]H_2 + Br_2 \rightarrow 2HBr[/tex]
The stoichiometric relationship between [tex]H_2[/tex] and [tex]Br_2[/tex] can be seen in this equation. For every one mole of [tex]H_2[/tex] , one mole of [tex]Br_2[/tex] is required to produce two moles of HBr. Thus, if we know the quantity of HBr, we can use stoichiometry to determine the quantities of [tex]H_2[/tex] and [tex]Br_2[/tex] that were required to form it. Stoichiometry is a branch of chemistry that deals with the quantitative relationships between reactants and products in a chemical reaction. It is used to calculate the amounts of reactants and products that are involved in a reaction by using the balanced equation and the coefficients of the reactants and products. Thus, the stoichiometric relationship between [tex]H_2[/tex] and [tex]Br_2[/tex] is essential in determining the amount of H2 and Br2 that are present in a given quantity of HBr.
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