Identify the compound with atoms that have an incomplete octet.A) BF3B) ICl5C) CO2D) COE) Cl2

Answers

Answer 1

(A) BF3 is the compound having atoms that are missing one or more of their octets.

According to the octet rule, atoms typically link together in molecular structures so that each atom has eight electrons in its outermost valence shell. There are, however, several exceptions to this rule. One such example is boron trifluoride (BF3). Boron can only form three bonds since it only possesses three valence electrons. In BF3, boron makes three covalent connections with three fluorine atoms, giving rise to six rather than the anticipated eight electrons in the outer shell of the atom. As a result, boron in BF3 has an unfinished octet. Since the atoms in such compounds are not quite content with their electron arrangement, they are more prone to engage in chemical processes in order to complete their octets.

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Related Questions

a.) Determine whether potassium hydrogen tartrate (KHC4H4O6) is neutral, basic, or acidic. First, what is its Ka when it acts as an acid? The following are for the diprotic acid, H2C4H4O6: Ka1 = 1.0 x 10-3 and Ka2 = 4.6 x 10-5. b.) Second, what is its Kb when it acts as a base? c.) Finally, indicate whether the HC4H4O6- ion is neutral, basic, or acidic in solution.

Answers

a) potassium hydrogen tartrate (KHC4H4O6) is acidic. Ka is calculated for the acidic characteristics of the molecule. When a proton is donated by the molecule to water, it forms the ion HCO4-. b) Kb = [C4H4O6-2][OH-]/[HC4H4O6-], Kb = (1.0 × 10-11) × [C4H4O6-2][OH-]/[HC4H4O6-]. c) As the ion HC4H4O6- is an acidic ion, it will have acidic characteristics in solution. It is because the ion can donate protons and act as an acid.

Kb is calculated for the basic characteristics of the molecule. The balanced chemical equation for the reaction is as follows:HC4H4O6-(aq) + H2O(l) ⇌ C4H4O6-2(aq) + OH-(aq)The Kb is determined using the equation given below : Kb = [C4H4O6-2][OH-]/[HC4H4O6-]The Ka value is calculated as shown below: Kb = [C4H4O6-2][OH-]/[HC4H4O6-]Kb = (1.0 × 10-11) × [C4H4O6-2][OH-]/[HC4H4O6-]

The balanced chemical equation for the reaction is as follows: HC4H4O6(aq) + H2O(l) ⇌ HCO4-(aq) + H3O+(aq)The Ka is determined using the equation given below : Ka = [HCO4-][H3O+]/[HC4H4O6]Ka = (1.0 × 10-3) × [HCO4-][H3O+]/[HC4H4O6]. Therefore, the Ka value is not given.

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When drawing the correct Lewis structure for the OH- ion, the oxygen atom has
a. one lone pair of electrons and three bonded pairs of electrons
b. three lone pairs of electrons and one bonded pair of electrons
c. two lone pairs of electrons and two bonded pairs of electrons
d. four lone pairs of electrons and zero bonded pair of electrons

Answers

The correct Lewis structure for the OH⁻ ion consists of an oxygen atom that has two lone pairs of electrons and one bonded pair of electrons. Therefore, the correct option is C.

How to draw the correct Lewis structure for the OH⁻ ion?

The OH⁻ ion is a negatively charged polyatomic ion, and it is composed of an oxygen atom (O) and a hydrogen atom (H). The valence electrons present in these two atoms are given as follows: H atom: 1 valence electron and O atom: 6 valence electrons.

Hence, the total number of valence electrons in the OH⁻ ion is: 1 + 6 + 1 = 8. Now, let's follow the below steps to draw the Lewis structure for the OH⁻ ion: Step 1: Determine the central atom. In the OH⁻ ion, the oxygen atom is the central atom.

Step 2: Connect the atoms using single bonds. In the OH⁻ ion, the hydrogen atom is connected to the oxygen atom via a single bond.

Step 3: Add lone pairs of electrons around each atom. According to the octet rule, the oxygen atom should have eight electrons around it. Out of the eight valence electrons, two electrons are in the bond, and the remaining six electrons are added as two lone pairs of electrons. The hydrogen atom has two valence electrons, and it has no electrons left to add to complete its octet. So, the final Lewis structure for the OH- ion is as follows: 

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because co2 combines chemically with water to form a weak acid called ______, water can hold perhaps 1,000 times more co2 than either nitrogen or oxygen at saturation

Answers

Answer:

Because CO2 combines chemically with water to form a weak acid called carbonic acid, water can hold perhaps 1,000 times more CO2 than either nitrogen or oxygen at saturation.

Explanation:

What is carbon dioxide (CO2)?

Carbon dioxide (CO2) is a colorless, odorless gas that occurs naturally in the Earth's atmosphere. Carbon dioxide is a waste gas produced by animals and humans during respiration and combustion. It is also produced by plants and algae during photosynthesis.

Carbon dioxide is an important greenhouse gas that contributes to climate change.CO2 can combine chemically with water to form a weak acid called carbonic acid. Because of this, water can hold perhaps 1,000 times more CO2 than either nitrogen or oxygen at saturation.

Carbonic acid can dissolve calcium carbonate, which is found in marine organisms' shells and is a vital component of coral reefs. As the acidity of the ocean increases as a result of increasing CO2 concentrations, this can have a significant impact on these organisms.

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the term pertaining to all the chemical reactions and physical workings of the cell is

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Metabolism is referred as the term pertaining to all the chemical reactions and physical workings of the cell.

Cellular metabolism refers to the set of chemical and physical processes that occur within a cell in order to convert nutrients into energy and other molecules that the cell can use. It also includes the transport of molecules in and out of the cell, as well as the regulation of these processes which helps to maintain the homeostatic balance of the cell, allowing it to function normally and respond to environmental changes. This includes the breakdown of molecules like carbohydrates, proteins, and lipids into their basic components, as well as the synthesis of molecules like enzymes, hormones, and other complex molecules.

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an ammonium based buffer contain s0.175 m ammounium bromide and 0.0836 m acetic acid. what is the ph of this solution

Answers

The pH of a solution of ammonium-based buffer containing 0.175 M ammonium bromide and 0.0836 M acetic acid is 9.26.

What is the pH of this solution?

A buffer is a mixture of a weak acid and its conjugate base or a weak base and its conjugate acid. It resists changes in pH when small amounts of acid or base are added to it.

For the buffer solution to work, its pH should be within the acid dissociation constant, Ka of the weak acid and the weak base, Kb. In this question, the buffer is made up of ammonium bromide and acetic acid. The Ka for the acetic acid, CH3COOH is 1.74 x 10-5. It is a weak acid. The buffer pH can be calculated using the Henderson Hassel-balch equation.

Henderson Hassel-balch equation pH = pKa + log ([A-] / [HA]) Where, A- is the conjugate base and HA is the weak acid, pKa is the negative logarithm of Ka, pKa = -log Ka = -log (1.74 x 10-5), pKa = 4.76. Ammonium bromide will act as a salt in this solution, and its conjugate base will be ammonia.

NH4Br → NH4+ + Br-NH4+ will combine with OH- to form ammonia, NH3 and water.NH4+ + OH- → NH3 + H2OIn this reaction, OH- will be added to the buffer.

To calculate the pH of the buffer, we need to know the concentration of NH4+ and NH3 at equilibrium. NH4+ will come from the ammonium bromide, and NH3 will come from the reaction above.The ammonium bromide dissociates as follows:

NH4Br → NH4+ + Br-

Therefore, [NH4+] = 0.175 M. The concentration of NH3 will depend on the OH- concentration, which will be used up in the reaction. We need to know the Kb of NH3 to calculate the concentration of NH3 at equilibrium.

Kb for NH3 is 1.8 x 10⁻⁵ NH3 + H2O ↔ NH4+ + OH

-Kb = [NH4+] [OH-] / [NH3]

Kb = [NH4+] [OH-] / [NH3]But [NH3] = [NH4+] as they are in equal amounts, so;

Kb = [OH-]

Kb = 1.8 x 10-5[OH-] = 1.8 x 10-5.

The pOH = - log (1.8 x 10-5) = 4.74.

The pH of the buffer = 14 - pOH = 9.26

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Balance and state the type for these equations: _Ca(OH)2 + _HCl —> _CaCl2+ _H2O

Answers

Answer:

1,2,1,2

Explanation:

Which of the following properties increase as you move from left to right across a period? Select all that apply.
A)Ionization energy
B)None
C)Electronegativity
D)Atomic radius

Answers

Ionization energy and Electronegativity increase as you move from left to right across a period.

A period is a row in the periodic table of elements. It consists of elements with a similar number of atomic orbitals. The table is arranged so that elements with the same number of valence electrons are located in the same group, making it easy to identify the properties of elements.

Ionization energy is the energy required to remove an electron from a neutral atom in its gaseous state.

Electronegativity is the measure of an atom's ability to attract electrons to itself.

As we move from left to right across a period, the effective nuclear charge increases, thus both ionization energy and electronegativity increase.

Therefore, the correct options are A)  Ionization energy and C) Electronegativity.

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Ideal Gas Lab

Data:
Complete the table to organize the data collected in this lab. Don’t forget to record measurements with the correct number of significant figures.

(Table attached below)

Data Analysis:
Create a separate graph of temperature vs. volume for each of the gas samples. You are encouraged to use graphing software or online tools to create the graphs; be sure to take screenshots of the graphs that also include your data.
Make sure to include the following on your graphs:
• Title
• Labels for axes and appropriate scales
• Clearly plotted data points
• A straight line of best fit
The x-intercept of the volume vs. temperature relationship, where the best fit line crosses the x-axis, is called absolute zero. Use the best fit line to extrapolate to the temperature at which the volume would be 0 mL. Record this value. It is your experimental value of absolute zero.
Example Graph:
This sample graph shows temperature data plotted along the x-axis and volume plotted on the y-axis. The best fit line for the data is extrapolated and crosses the x-axis just short of the absolute zero mark.
Calculations:
1. The actual value for absolute zero in degrees Celsius is −273.15. Use the formula below to determine your percent error for both gas samples.
|experimental value – actual value| x 100
actual value
2. If the atmospheric pressure in the laboratory is 1.2 atm, how many moles of gas were in each syringe? (Hint: Choose one volume and temperature pair from your data table to use in your ideal gas law calculation.)
Conclusion:
Write a conclusion statement that addresses the following questions:
How did your experimental absolute zero value compare to the accepted value?
Does your data support or fail to support your hypothesis (include examples)?
· Discuss any possible sources of error that could have impacted the results of this lab.
How do you think the investigation can be explored further?
Post-Lab Reflection Questions
Answer the reflection questions using what you have learned from the lesson and your experimental data. It will be helpful to refer to your chemistry journal notes. Answer questions in complete sentences.
1. Why was the line of best fit method used to determine the experimental value of absolute zero?

2. Which gas law is this experiment investigating? How does your graph represent the gas law under investigation?

3. Using your knowledge of the kinetic molecular theory of gases, describe the relationship between volume and temperature of an ideal gas. Explain how this is reflected in your lab data.

4. Pressure and number of moles remained constant during this experiment. If you wanted to test one of these variables in a future experiment, how would you use your knowledge of gas laws to set up the investigation?

Answers

The actual absolute zero temperature in degrees Celsius is 273.15.

Experimental Value of Absolute Zero for Sample 1: -283.6°C

Percent Error for Sample 1: |(-283.6 - (-273.15)) / (-273.15)| x 100 = 3.8%

Experimental Value of Absolute Zero for Sample 2: -288.7°C

Percent Error for Sample 2: |(-288.7 - (-273.15)) / (-273.15)| x 100 = 5.7%

How many moles of gas were in each syringe if the atmospheric pressure in the laboratory is 1.2 atm?

Using Sample 1:

P = 1.2 atm

V = 22.0 mL

n = (P * V) / (R * T)

n = (1.2 * 0.0220) / (0.0821 * (12+273))

n = 0.00075 mol

Using Sample 2:

P = 1.2 atm

V = 20.0 mL

n = (P * V) / (R * T)

n = (1.2 * 0.0200) / (0.0821 * (12+273))

n = 0.00069 mol

Conclusion:

The experimental absolute zero value for Sample 1 was -283.6°C with a percent error of 3.8% and for Sample 2 was -288.7°C with a percent error of 5.7%. The experimental absolute zero values were close to the accepted value of -273.15°C, with Sample 1 being closer than Sample 2. Therefore, the data supports the hypothesis that the relationship between volume and temperature of an ideal gas can be used to determine absolute zero.

Possible sources of error that could have impacted the results of this lab include experimental error in measuring the volume and temperature, as well as deviations from ideal gas behavior due to factors such as intermolecular forces.

The investigation can be explored further by testing the effects of changes in pressure and number of moles on the relationship between volume and temperature in ideal gases.

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an aqueous solution is known to contain pb2 , cu2 , and na ions. treatment of the sample with both naoh and licl solution produces a precipitate. which of the metal cations does the solution contain? explain your response

Answers

An aqueous solution is known to contain Pb²⁺ , Cu²⁺ , and Na⁺ ions. Treatment of the sample with both NaOH and LiCl solution produces a precipitate. Pb²⁺ will produce white precipitate. This is Salt analysis.

What is precipitate?

Precipitation in chemistry is the formation of an insoluble chemical by the reaction of two salts or through temperature changes that affect the solubility of the compound. The solid that results from a precipitation process is referred to as a "precipitate" as well.

Precipitation can be a sign that a chemical reaction has taken place, but it can also happen when the concentration of a solute is higher than its solubility. The process of small, insoluble particles aggregating with one another or forming an interface with a surface, such as the container wall or a seed crystal, is the precursor to precipitation and is known as nucleation.

What is salt analysis?

An inorganic salt's cation and anion are identified by salt analysis. Systematic qualitative analysis is another name for it. To ascertain the presence or absence of particular cations and anions in salt, a number of tests and observations are performed.

Initializing the anion of the salt group serves as the first step in the preliminary test for anions. When a preliminary test for an anion is positive, a confirmatory test is necessary to verify the anion's presence in the salt.

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isotopes are different forms of an element that have different ______.

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Isotopes are different forms of an element that have different atomic masses. The number of protons in each atom of an element will remain the same, but isotopes of an element will have different numbers of neutrons, leading to different atomic masses.

Isotopes are different forms of an element that have different numbers of neutrons in their nuclei. The number of neutrons in an atom can vary from one to several, depending on the element. Isotopes are atoms of an element that differ in the number of neutrons present in their nucleus. The atomic number of an element is determined by the number of protons present in the nucleus. However, the isotopes of the same element differ in their mass numbers. The atomic mass of an element is determined by the number of protons and neutrons present in the nucleus.

The atomic number of an atom is the sum of the number of protons in the nucleus and the number of electrons in a neutral (non-ionized) atom. Each atomic number designates a particular element, but not an isotope; the number of neutrons in an atom of a given element can vary widely. Each isotope of an element has a particular mass number, which is determined by the number of nucleons (both protons and neutrons) in the nucleus. Therefore, the isotopes of an element have different atomic masses.

Isotopes can be radioactive or stable, depending on the number of neutrons present in the nucleus. For instance, carbon-14 is a radioactive isotope of carbon, while carbon-12 is a stable isotope.

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The descriptions below explain two ways that water is used by plants on a sunny day.

I. In a process called transpiration, some liquid water in leaves changes to water vapor. The water vapor is released into the air through tiny pores in the leaves. This allows more liquid water from the soil to be pulled up the roots and stem to replace water lost from the leaves.

II. Plants use some of this water in leaves in a process called photosynthesis. During photosynthesis, water and carbon dioxide break apart and recombine to form two new substances, oxygen and glucose.

Based on the above description of transpiration and photosynthesis, which type of change happens to water during each process?

In transpiration, because some of its properties change, water undergoes a physical change but keeps its identity. In photosynthesis, because its identity changes, water undergoes a chemical change.
In transpiration, because some of its properties change, water undergoes a chemical change but keeps its identity. In photosynthesis, because its identity changes, water undergoes a physical change.
In transpiration, because its physical properties change, water undergoes a physical change and loses its identity. In photosynthesis, because it keeps its identity, water undergoes a chemical change.
In transpiration, because its chemical properties change, water undergoes a chemical change and loses its identity. In photosynthesis, because it keeps its identity, water undergoes a physical change.

Answers

The correct answer is: In transpiration, because some of its properties change, water undergoes a physical change but keeps its identity.

What are transpiration and photosynthesis?

Transpiration and photosynthesis are both processes that involve the use of water by plants.

Transpiration is the process by which water evaporates from the leaves of a plant and is released into the atmosphere. This occurs through tiny openings on the surface of leaves called stomata. The water that is lost through transpiration is replaced by water absorbed by the roots of the plant from the soil.

Photosynthesis, on the other hand, is the process by which plants use water, along with carbon dioxide and sunlight, to produce oxygen and glucose. During photosynthesis, water is split into hydrogen and oxygen, and the oxygen is released into the atmosphere as a byproduct. The glucose that is produced is used as a source of energy by the plant.

In transpiration, because some of its properties change, water undergoes a physical change but keeps its identity. In photosynthesis, because its identity changes, water undergoes a chemical change.

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Answer:

Its A

Explanation:

Got it right on the quiz

Dolostone is composed of the mineral dolomite, which is similar to calcite in limestone, except that dolomite contains_____
a. Iron
b. Aluminium
c. Silica
d. Magnesium

Answers

Dolostone is composed of the mineral dolomite, which is similar to calcite in limestone, except that dolomite contains magnesium.

Dolostone, also known as dolomite rock, is a sedimentary rock composed mainly of the mineral dolomite. Dolomite, a calcium magnesium carbonate mineral, is the primary component of dolostone, making up around 90-95 percent of the rock. Dolostone is a rock that is similar to limestone and is often mistaken for it.

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The plum pudding model hypothesized by Thompson shows the scattering of electrons. When was this discovered in relation to other scientist's atomic hypotheses?

After Rutherford but before Chadwick
Before Bohr but after Chadwick
Before Bohr and Rutherford
After Rutherford but before Bohr

Answers

Answer: Before Rutherford

Explanation:

The plum pudding model was proposed by J.J. Thomson in 1904, before the experiments conducted by Ernest Rutherford in 1909 that led to the discovery of the atomic nucleus. Therefore, the correct answer is "Before Rutherford".

Answer:

Before Bohr and Rutherford

Explanation:

The plum pudding model was proposed by J.J. Thomson in 1904, before both Ernest Rutherford's gold foil experiment in 1911 and Niels Bohr's atomic model in 1913. Therefore, the correct answer is before Bohr and Rutherford.

what is the hybridization of the oxygen atom in a water molecule?

Answers

During the formation of a water molecule, we focus on the oxygen atom. In hybridization of H2O, the oxygen atom is sp3hybridized.

write the empirical formula for at least four ionic compounds that could be formed from the following ions: o CIO3^-,
o nh4^ ,
o ch3co2^-,
o pb^4+

Answers

Empirical formulae are the ratios of atoms in a compound that show the lowest possible ratio of atoms per mole of compound.

What is the empirical formula?

In this question, we are to find the empirical formulae for the following ions:

OCl³⁻, NH⁴⁺, CH₃CO₂⁻ and Pb⁴⁺

Empirical formula for OCl³⁻:Oxygen (O) forms an anion by gaining three electrons to form the oxide ion, O²⁻

The ClO₃⁻ ion has one O²⁻ and three Cl⁺ ions. Therefore, the empirical formula is OCl³⁻

Empirical formula for NH₄⁺ :Nitrogen (N) forms a cation by losing three electrons to form N₃⁺ while Hydrogen (H) forms a cation by losing an electron to form H⁺. Therefore, the empirical formula for NH₄⁺ is NH₄⁺

Empirical formula for CH₃CO₂⁻

The ion contains 2 Carbon atoms, 3 Oxygen atoms, and 4 Hydrogen atoms. Divide each number of atoms by the lowest number (2) to give the empirical formula: CH₃CO₂⁻

Empirical formula for Pb⁴⁺:Lead (Pb) forms a cation by losing four electrons to form Pb⁴⁺.Therefore, the empirical formula for Pb⁴⁺+ is Pb⁴⁺.

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what is the entropy change when 315 j of energy is reversibly transferred to a sample of water at 25 °c?

Answers

When 315 J of energy is irreversibly transferred to a sample of water at 25°C, the entropy shift is roughly 1.056 J/K.

The entropy change when 315 J of energy is reversibly transferred to a sample of water at 25°C can be calculated using the equation:

ΔS = qrev/T

where ΔS is the change in entropy, qrev is the amount of heat transferred reversibly, and T is the temperature in Kelvin.

Converting the temperature to Kelvin by adding 273.15:

T = 25°C + 273.15 = 298.15 K

Substituting the given values:

ΔS = 315 J / 298.15 K

ΔS ≈ 1.056 J/K

Therefore, the entropy change when 315 J of energy is reversibly transferred to a sample of water at 25°C is approximately 1.056 J/K.

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Testing for Alcohols & Carboxylic Acids
1. The presence of a primary or secondary alcohol can be confirmed by reaction with acidified potassium
dichromate solution which changes colour from orange to green.
a) State the name formula of the reagent used to test for the presence of a primary/secondary alcohol.
b) State the colour change observed when this reagent reacts with an alcohol.
c) What type of compound is produced by the oxidation of a primary alcohol?
d) What type of compound is produced by the oxidation of a secondary alcohol?
e) Explain why the dichromate test does not work for tertiary alcohols such as methylpropan-2-ol.
Include the chemical structure of methylpropan-2-ol in your explanation.
2.a) Describe a simple chemical test for the presence of a carboxylic acid group in a molecule.
Reagent:
Observation:
b) Describe how you would confirm that the gas produced in this test is carbon dioxide.
c) Explain why, for a completely unknown compound, the hydrogencarbonate test is not conclusive proof
that a carboxylic acid group is present.

Answers

Answer:

a) Acidified potassium dichromate solution is used to test for the presence of a primary or secondary alcohol.

b) The orange color of the potassium dichromate solution is reduced to green when it reacts with an alcohol.

c) The oxidation of a primary alcohol produces a carboxylic acid.

d) The oxidation of a secondary alcohol produces a ketone.

e) The dichromate test does not work for tertiary alcohols because they cannot be further oxidized. Methylpropan-2-ol is a tertiary alcohol with the chemical structure:

CH3

|

CH3—C—OH

|

CH3

Since there are no hydrogen atoms attached to the carbon atom bearing the hydroxyl group, it cannot be oxidized.

a) A simple test for the presence of a carboxylic acid group is the addition of sodium hydrogencarbonate solution to the compound. The reagent reacts with the carboxylic acid to produce carbon dioxide gas.

Reagent: Sodium hydrogencarbonate solution

Observation: Effervescence (bubbling) due to the release of carbon dioxide gas.

b) To confirm that the gas produced in the hydrogencarbonate test is carbon dioxide, it can be tested with limewater. Carbon dioxide turns limewater milky/cloudy due to the formation of calcium carbonate.

c) The hydrogencarbonate test is not conclusive proof that a carboxylic acid group is present in a completely unknown compound because some other functional groups such as phenols and alcohols can also react with the reagent and produce carbon dioxide. Therefore, additional tests such as the dichromate test or Tollens' test may be needed to confirm the presence of a carboxylic acid group.

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hydrocarbons are composed primarily of which two elements?

Answers

Answer: carbon and hydrogen 

Explanation:

Hydrocarbons are a group of chemical organic compounds composed of carbon and hydrogen 

For charged particles, how does the strength of the interaction vary in each of the following cases? (Increase or decrease) a. The distance between the charges increases. b. The size of the charge decreases.

Answers

In each of the following situations, the intensity of the interaction differs for charged particles.

a. The distance between the charges increases. (decreases)

b. The size of the charge decreases. (increases)

a. The strength of the interaction between charged particles decreases as the distance between them increases. This is because the force between charged particles follows an inverse square law, which means that the force decreases with the square of the distance between the charges. Therefore, as the distance between the charges increases, the force between them decreases and the strength of the interaction decreases.

b. The strength of the interaction between charged particles increases as the size of the charge decreases. This is because the force between charged particles is directly proportional to the magnitude of the charge. Therefore, as the size of the charge decreases the force between the charged particles decreases and the strength of the interaction decreases.

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Name any 6 processes in which materials change from one form to another​

Answers

Here are six processes in which materials change from one form to another:

MeltingFreezingEvaporationCondensationSublimationDeposition

Melting - When a solid material is heated, it may change into a liquid form.

Freezing - When a liquid material is cooled, it may change into a solid form.

Evaporation - When a liquid material is heated, it may change into a gaseous form.

Condensation - When a gaseous material is cooled, it may change into a liquid form.

Sublimation - When a solid material is heated, it may change directly into a gaseous form without going through the liquid phase.

Deposition - When a gaseous material is cooled, it may change directly into a solid form without going through the liquid phase.

In all of these processes, the chemical composition of the material remains the same, but its physical form changes. For example, ice (solid water) can melt to become liquid water, which can then evaporate to become water vapor (a gas).

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 Please help
The enthalpy of vaporization for water is 40.7 kJ/mol. Water has a vapor pressure of 101.3 ka at 100.0 °C. Using the Clausius-Clapeyron equation, what is the vapor pressure for methanol at 70.0
°C? Give your answer in kPa, to the first decimal point.

Answers

The Clausius-Clapeyron equation is:

ln(P₂/P₁) = -ΔH_vap/R * (1/T₂ - 1/T₁)

where P₁ and T₁ are the vapor pressure and temperature of the first substance (water), P₂ and T₂ are the vapor pressure and temperature of the second substance (methanol), ΔH_vap is the enthalpy of vaporization, R is the gas constant (8.314 J/mol*K).

Using the given values:

P₁ = 101.3 kPa
T₁ = 100.0 + 273.15 = 373.15 K
ΔH_vap = 40.7 kJ/mol
R = 8.314 J/mol*K

We need to solve for P₂ at T₂ = 70.0 + 273.15 = 343.15 K.

ln(P₂/101.3) = -40700 J/mol / (8.314 J/mol*K) * (1/343.15 K - 1/373.15 K)

ln(P₂/101.3) = -3.948

P₂/101.3 = e^(-3.948)

P₂ = 16.1 kPa

Therefore, the vapor pressure for methanol at 70.0 °C is 16.1 kPa (to the first decimal point)

What is the primary safety hazard associated with dichloromethane methylene chloride )?

Answers

The primary safety hazard associated with dichloromethane (methylene chloride) is its potential to cause serious health effects if it is inhaled or absorbed through the skin.

Dichloromethane is a colorless, volatile liquid with a sweet odor. It is commonly used as a solvent in various industrial and laboratory applications. Exposure to high concentrations of dichloromethane vapor can cause dizziness, headache, nausea, and even unconsciousness. Prolonged exposure can lead to more serious effects, including liver and kidney damage, as well as cancer. In addition, dichloromethane can be absorbed through the skin, and contact with the liquid can cause irritation or chemical burns. It can also react with other chemicals to form potentially explosive or toxic compounds. aTherefore, appropriate safety measures such as good ventilation, protective clothing, and gloves should be used when handling dichloromethane. It is also important to dispose of it properly and not to mix it with other chemicals unless under controlled conditions.

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In the table, give specific examples of ecosystem services coral reefs provide for other ecosystems. (3 points)
Provisioning
Supporting
Regulating
Cultural

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Note that the specific examples of ecosystem services that  coral reefs provide for other ecosystems are given in the attached table.

What are ecosystem services?

Ecosystem services are the benefits humans derive from the natural environment, such as food, water, and clean air.

Ecosystem services are important because they provide essential resources for human well-being and support economic development.

Some example explained are:

Provisioning: Fisheries provide a source of food and income for many communities. Timber is a key resource for the construction and paper industries. Crop pollination is necessary for agriculture and food production.

Supporting: Soil formation provides the foundation for plant growth and food production. Nutrient cycling replenishes soil fertility and supports plant growth. Habitat provision supports biodiversity and the provision of other ecosystem services.

Regulating: Pollination is essential for plant reproduction and the production of crops. Water purification removes harmful contaminants from drinking water. Climate regulation helps to mitigate the impacts of climate change.

Cultural: Recreation provides opportunities for people to engage with nature and promotes physical and mental well-being. Aesthetic value refers to the beauty and cultural significance of natural landscapes. Spiritual and religious values are often associated with natural environments and provide cultural and social benefits.

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20pcm3 og a gas has a pressure of 510mmhg what will be the volume of the pressure is increased to 780mmhg, assuming there is no change in temperature​

Answers

The volume of the gas will decrease from 20 cm³ to 13.08 cm³.

What is Boyle's law?

Boyle's law is a gas law that states that the product of the pressure and volume of a gas is constant at constant temperature.

What is the significance of assuming no change in temperature in this problem?

Assuming no change in temperature is significant because it allows us to apply Boyle's law to solve the problem. If the temperature were to change, we would need to use a different gas law, such as Charles's law or the combined gas law, to account for the change in temperature.

We can use Boyle's law to solve this problem, which states that the product of the pressure and volume of a gas is constant at constant temperature. Mathematically, we can express this as P₁V₁ = P₂V₂, where P₁ and V₁ are the initial pressure and volume, respectively, and P₂ and V₂ are the final pressure and volume, respectively.

Using this equation, we can solve for V₂:

P₁V₁ = P₂V₂

V₂ = (P₁V₁)/P₂

Substituting the given values, we get:

V₂ = (510 mmHg x 20 cm³) / 780 mmHg

V₂ = 13.08 cm³

Therefore, if the pressure is increased from 510 mmHg to 780 mmHg at constant temperature, the volume of the gas will decrease from 20 cm³ to 13.08 cm³.

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Determine the molecular geometry based on the description of bonding and lone pairs of electrons around the central atom.Three double bonds and no lone pairs of electronsFour single bonds and no lone pairs of electronsTwo double bonds and no lone pairs of electronsThree single bonds and one lone pair of electronsFive single bonds and no lone pairs of electronsSix single bonds and no lone pairs of electronsTwo single bonds and two lone pairs of electrons

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The molecular geometry based on the description of bonding and lone pairs are as follows:



- Three double bonds and no lone pairs of electrons: linear


- Four single bonds and no lone pairs of electrons: tetrahedral


- Two double bonds and no lone pairs of electrons: bent/angular


- Three single bonds and one lone pair of electrons: trigonal pyramidal


- Five single bonds and no lone pairs of electrons: trigonal bipyramidal


- Six single bonds and no lone pairs of electrons: octahedral


- Two single bonds and two lone pairs of electrons: bent/angular

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g the half life of 2n-71 is 2.4 minutes. if we started with 50g at the beginning, how many grams would be left after 12 minutes?

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After 12 minutes, the amount of 2N-71 remaining would be 25 grams. This is because the half-life of 2N-71 is 2.4 minutes, meaning that after 2.4 minutes, half of the initial amount (50 grams) will remain. After 12 minutes, half of the remaining 25 grams will have decayed, leaving 25 grams.


The initial amount of 2n-71 is 50 g, and the half-life of 2n-71 is 2.4 minutes. We need to determine how many grams of 2n-71 would be left after 12 minutes. During radioactive decay, the amount of a radioactive substance decreases exponentially over time. The formula for determining the amount remaining of a radioactive substance after time t is:A = A₀(1/2)^(t/h)Where, A₀ = the initial amount of the substance,A = the amount of the substance after time t,h = the half-life of the substance, and t = time elapsedPlugging the given values in the formula, we get:A = 50(1/2)^(12/2.4)A = 50(1/2)^5A = 50(1/32)A = 1.5625Therefore, the amount of 2n-71 left after 12 minutes is 1.5625 g.

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84 g of baking soda (sodium bicarbonate) reacts with 60 g of vinegar. The reaction produces 18 g of water and 82 g of salt called sodium acetate and some carbon dioxide, that bubbles out of the beaker and could not be measured. Use the law of conservation of mass to determine the mass of oxygen used. explain, in your own words how you solved this problem?

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Answer:

To solve this problem, we need to apply the law of conservation of mass, which states that mass cannot be created or destroyed in a chemical reaction. This means that the total mass of the reactants must be equal to the total mass of the products.

We start by writing a balanced chemical equation for the reaction between baking soda and vinegar:

NaHCO3 + CH3COOH → NaCH3COO + H2O + CO2

This equation tells us that one mole of baking soda (sodium bicarbonate) reacts with one mole of vinegar (acetic acid) to produce one mole of sodium acetate, one mole of water, and one mole of carbon dioxide.

We can use the molar masses of the compounds involved to convert the given masses into moles:

84 g of baking soda is equivalent to 0.8 moles (84 g / 84 g/mol)

60 g of vinegar is equivalent to 1.0 moles (60 g / 60 g/mol)

18 g of water is equivalent to 1.0 moles (18 g / 18 g/mol)

82 g of sodium acetate is equivalent to 1.0 moles (82 g / 82 g/mol)

3. Assertion (A): There is a small gap left between the rails of a railway track
Reason (R): Cooling of substances result in contraction.
Both A and R are true but R is not the correct explanation of A
A is false but R is true
b.
c. A is true but R is false
d. Both A and R are true and R is the correct explanation of A

Answers

There is a small gap left between the rails of a railway track Reason (R): Cooling of substances result in contraction. Both A and R are true but R is not the correct explanation of A,

Why cooling causes contraction ?

When a substance is cooled, it means that the heat is removed from the substance. This results in fewer excited molecules and, as a result, less random motion. The force of attraction increases, resulting in fewer spaces between molecules, which causes contraction.

Why there is appearance of gap between railway track?

The gaps left between successive rails on a railway track as a result of the rails expanding in the summer. The gap exists to allow for this expansion. If no gap is left, the summer expansion will cause the rails to bend sideways. This will lead to train accidents.

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Please help! 7.0 mol Mn reacts with 5.0 mol O2 according to the equation below: 2Mn + O, → 2MnO How many moles of MnO form from 5.0 mol O2? [? mol MnO Round your answer to the tenths place. mol MnO Enter​

Answers

5.0 moles of O2 will form 10.0 moles of MnO. Rounded to the tenths place, the answer is: 10.0 mol MnO

How many moles of Mn react with 5.0 mol O2?

10.0 mol Mn react with 5.0 mol O2.

How many moles of O2 are needed to react with 7.0 mol Mn?

2.5 mol O2 are needed to react with 7.0 mol Mn.

The balanced chemical equation for the reaction between Mn and O2 is:

2 Mn + O2 → 2 MnO

According to the stoichiometry of the equation, 2 moles of Mn react with 1 mole of O2 to form 2 moles of MnO. Therefore, 7.0 moles of Mn will react with:

(5.0 mol O2) / (1 mol O2/2 mol Mn) = 10.0 mol Mn

This means that there is an excess of Mn, and the limiting reactant is O2. From the balanced equation, 1 mole of O2 reacts with 2 moles of MnO to form 2 moles of MnO. Therefore, 5.0 moles of O2 will react with:

(5.0 mol O2) / (1 mol O2/2 mol MnO) = 10.0 mol MnO

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if i were to spray perfume at the corner of a classroom, the perfume would gradually spread out evenly until it fills the entire room. which law of thermodynamics does this best exemplify?

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The gradual spread of perfume from a localized area to fill the entire room exemplifies the second law of thermodynamics.

This law states that in any isolated system, the total entropy (a measure of disorder or randomness) always increases over time. In this case, the perfume molecules initially have a high concentration in the corner of the room and low concentration in the rest of the room. However, as time passes, the perfume molecules spread out and become more evenly distributed throughout the room.

This process increases the entropy of the system, as the perfume molecules become more randomly arranged and disordered. The second law of thermodynamics thus predicts the natural tendency of systems to move from a state of lower entropy to higher entropy over time.

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