Okay I actually have a question this time can someone please help me with this table and the question? I tried doing it but my teacher said it was wrong so-

Okay I Actually Have A Question This Time Can Someone Please Help Me With This Table And The Question?

Answers

Answer 1

The temperature is increasing the three degrees.

Does heat affect enthalpy of reaction?

The enthalpy of a reaction, also known as the heat of reaction, can be affected by changes in temperature. Enthalpy is a measure of the total energy in a system, including both heat and internal energy.

In a chemical reaction, the enthalpy change is the heat absorbed or released during the reaction, which can be measured as the temperature change of the system. When the temperature of a reaction increases, the enthalpy of the system will increase, and when the temperature decreases, the enthalpy of the system will decrease.

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Related Questions

The rate limiting step in a reaction is the slowest step in the reaction sequence. True False

Answers

The statement is true. The rate-limiting step in a reaction is the slowest step.

The rate-limiting step in a reaction is the slowest step in the reaction sequence and determines the overall rate of the reaction. This step is generally characterized by having the highest activation energy and is often the step with the lowest concentration of reactants. The rate-limiting step is often the rate-determining step, meaning that the rate of the reaction is dependent on this step. The rate-limiting step is also called the slow step or the rate-controlling step.

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Convert 2.55 moles of calcium chloride to grams. CaCl2

Answers

Answer:

282.999g

Explanation:

2.55moles times the molar mass of CaCl2

CaCl2= 40.08+35.45(2)=110.98

2.55 moles times 110.98g/1mol

=282.999g CaCl2

Why do quartz and glass both have very high melting points?

please can someone give an explanation

Answers

Covalent bonding is present in Quartz. Covalent bonds result in a high melting point. Covalent solids are insoluble in most solvents.

Why does quartz have such a high melting point?

Quartz is very hard to melt because quartz is unsteady above 870 Celsius, and molten silica is wobbling below 1713 Celsius. In the interval between 870 and 1713 degrees, quartz tends to change to tridymite or cristobalite, not melt. It is hard to heat quartz to melt, in the region of 1650 Celsius

Melting point: The melting point of quartz is higher than 1700°C. Curie temperature for alpha and beta quartz: The Curie warmth for quartz is 573°C.

So we can conclude that Crystal quartz has a very particular melting point. Because quartz glass is a single component it doesn't form eutectics

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What are some possible areas in the homeland at school

where energy usage can be easily reduced?
Write 4 sentence explaining

Answers

Answer:

1. Shower instead of bathing.

2. When you leave the room, turn off everything.

3. Grow a Tree

4. Bicycle or walk to school.

Explanation:

As global temperatures rise, wildfires, droughts, and increased electrical consumption place strain on the country's energy system. Severe weather is the main cause of power outages and fuel supply disruptions in the United States. And, because energy generation is one of the greatest producers of CO2 to the climate, people and students alike must have the information and abilities to comprehend the issues, create and execute solutions, and advocate for change.

warm-blooded animals employ ______ to regulate the temperatures of the body
a) radiation
b) conduction
c) convection

Answers

Warm-blooded animals employ radiation to regulate the temperatures of the body. Therefore, the correct option is option A.

What is warm-blooded animal?

The term "warm-blooded" relates to animal species that bodies sustain a temperature higher than the ambient temperature. Homeothermic creatures (birds and mammals included) control metabolic activities to maintain a constant body temperature. The degree of thermoregulation in other animals varies.

Because animals employ more than two methods of temperature regulation, the terms "warm-blooded" and "cold-blooded" have become derogatory within the scientific community. Warm-blooded animals employ radiation to regulate the temperatures of the body.

Therefore, the correct option is option A.

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what enzyme uses the energy of a proton gradient to add a phosphate to adp?

Answers

The correct answer is ATP Synthase uses the energy of a proton gradient to add a phosphate to ADP.

The mitochondrial enzyme ATP synthase, which is found in the inner membrane, transforms ADP and phosphate into ATP. The stream of protons is driven by the movement of electrons from the chemically positive to the negative side of the proton, which creates a gradient.The electron transport chain involves the downhill flow of electrons to the final electron acceptor through a chain of membrane-bound carriers in order to aid the uphill transfer of protons across a proton-impermeable membrane. In order to move protons (ions) via ATP synthase Fo particles and down the concentration gradient, it creates a proton gradient. The proton-motive force, which drives protons to move, provides the energy for ADP phosphorylation (ions).

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625 grams of aluminum metal is reacted with 450. grams of iron (iii) oxide in the presence of heat. calculate the number of grams of all species present after the reaction.

Answers

There a number of grams of all species present after the reaction, there are 287.4 g of aluminum oxide, 315.4 g of iron, and 34.12 g of aluminum remaining.

Calculation of the number of grams of all species present after the reaction

To determine the products of the reaction, we need to write the balanced chemical equation:

2 Al + Fe2O3 → Al2O3 + 2 Fe

From the equation, we see that two moles of aluminum react with one mole of iron (III) oxide to produce one mole of aluminum oxide and two moles of iron.

To calculate the number of grams of each species present after the reaction, we need to determine the limiting reagent, which is the reactant that is completely consumed and limits the amount of product that can be formed.

The number of moles of each reactant can be calculated using their respective molar masses:

Moles of aluminum = 625 g / 26.98 g/mol = 23.16 mol

Moles of iron (III) oxide = 450 g / 159.69 g/mol = 2.82 mol

The stoichiometry of the balanced equation tells us that 2 moles of aluminum react with 1 mole of iron (III) oxide, so aluminum is in excess. Therefore, iron (III) oxide is the limiting reagent.

The amount of product formed can be calculated using the mole ratio from the balanced equation:

Moles of aluminum oxide produced = 2.82 mol Fe2O3 × (1 mol Al2O3 / 1 mol Fe2O3) = 2.82 mol Al2O3

Moles of iron produced = 2 × 2.82 mol Fe2O3 × (1 mol Fe / 1 mol Fe2O3) = 5.64 mol Fe

To calculate the mass of each species, we need to multiply the number of moles by their respective molar masses:

Mass of aluminum oxide produced = 2.82 mol Al2O3 × 101.96 g/mol = 287.4 g

Mass of iron produced = 5.64 mol Fe × 55.85 g/mol = 315.4 g

Mass of aluminum remaining = 625 g - (23.16 mol Al × 26.98 g/mol) = 34.12 g

Therefore, after the reaction, there are 287.4 g of aluminum oxide, 315.4 g of iron, and 34.12 g of aluminum remaining.

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All of the following pairs of ions are isoelectronic except which one?
A) Al³⁺ and N³⁻
B) Fe²⁺ and Co³⁺
C) Fe²⁺ and Mn³⁺
D) K+ and Ca²⁺
E) Zn²⁺ and Cu+

Answers

Except Fe²⁺ and Mn³⁺ remaining all pairs of ions are isoelectronic. These species are substances with the same arrangement of electrons (and therefore the same number of electrons).

When two ions or molecules share the same electronic structure and valence electron count, they are said to be isoelectronic. In Fe we see the total number of electrons are 26 electrons then Fe2+ loses two electrons after which it becomes 24 electrons while Mg has 12 electrons, the Mg3+ loses 3 electrons after which it contains 9 electrons. The electronic configuration of Fe2+ is [Ar] 3d6. The electronic configuration of Mg3+ is [Ne] 3s2. So, here we can observe they have different arrangement of electrons as to which they are not isoelectronic.

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What is the ground state electron configuration for chloride ion?

Answers

The chloride ion's ground state electron configuration is [Ne] 3s2 3p6.

An atom of chlorine that has lost one electron and now has a net charge of -1 is known as a chloride ion.

The chloride ion contains 16 electrons overall due to the loss of one electron from the chlorine atom, which has 17 protons in its nucleus.

The chloride ion's atomic structure resembles that of a chlorine atom, but one electron from the 3s orbital is missing.

The chloride ion now has an electron configuration of [Ne] 3s2 3p6, with the 3s orbital having two electrons and the 3p orbital having six.

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3AgNO3 + Na3PO4 -> Ag3PO4 + 3NaNO3

Silver nitrate and sodium phosphate are reacted in equal amounts of 200 g each.

How many grams of the excess reagent is left over?

Answers

The balanced chemical equation for the reaction is as follows: 3AgNO3 + Na3PO4 -> Ag3PO4 + 3NaNO3

What is balanced chemical?

A balanced chemical equation is a chemical equation in which the number of atoms for each element in the reaction's reactants and products are equal. This means that the same number of atoms of each element is conserved and that the equation is balanced. In other words, a balanced chemical equation follows the law of conservation of mass, which states that matter can neither be created nor destroyed.

Since the amounts of both reactants are equal (200 g each), the same amount of each will be consumed in the reaction. This means that 200 g of each reagent will be used and there will be no excess reagent. Therefore, the answer is 0 g of excess reagent.

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which of the following statements describes lattice energy? select the correct answer below: it is the energy stored in the intermolecular attractions that hold particles together in an ionic solid. it is the energy of a solute. it is the amount of enthalpy change that occurs when 1mol of ionic solid is converted into gaseous ions. all of the above

Answers

Option A: It is the amount of energy stored in the intermolecular attractions that hold particles together in an ionic solid, and option C: it is the amount of enthalpy change that occurs when 1mol of ionic solid is converted into gaseous ions, describes lattice energy.

The enthalpy change required to convert one mole of an ionic solid into gaseous ionic components is known as lattice energy. The strength of the ionic bonds in an ionic compound is gauged by lattice energy. It holds the particles together in a molecule. Thus, option A and C describes lattice energy. It sheds light on a number of ionic solids' characteristics, such as their solubility, hardness, and volatility.

The lattice energy of an ionic solid cannot be measured directly, but only be detected with Born-Haber cycle. It is expressed in terms of kilo-joule per mole, KJ/mol.

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which of the following factors is not involved in the downwelling responsible for the thermohaline circulation? a. evaporation b. low precipitation c. warm surface currents d. freezing of sea water

Answers

Option (d) is correct. Freezing of sea water is not responsible for the thermohaline circulation.

Thermohaline circulation is defined as the movement of ocean water caused by density difference brought about by variations in temperature and salinity. As ocean water freezes at the poles it concentrates salt and the colder and denser water sinks. It is a part of the large scale ocean circulation that is driven by global density gradients created by surface heat and freshwater. The term thermohaline derives from word "thermo", referring to temperature and "haline", referring to salt content. Both together determine the density of sea water. Thermohaline circulations occur in certain marginal seas associated with warm waters rendered dense by their high salinity resulting from evaporation.

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when measuring a melting point for a solid compound, why is it important to slow the rate of heating when approaching the melting point of a substance?

Answers

Answer:

Explanation:

It is important to add heat slowly and steadily because when a substance undergoes a phase change, it absorbs much energy until it heats its melting. So, the heat must be provided steadily. Slow heating helps to determine a more accurate melting point range.

2. Explain why the drop of water on the wax paper is "very round" in comparison to the drop on the glass is more flat use the term either hydrophobic or hydrophilic

Answers

The water droplet on wax paper is round and flat on a glass surface, this is because of the hydrophobic and hydrophilic properties of water.

The water drop on wax paper is very round in comparison to the one on a glass which is flatter, this indicates the property of cohesion of water molecules, this is due to gravity.

On the other hand, when the water droplet is on wax paper it is way rounder in shape and attracted to the wax paper called as adhesion.

Hydrophobic literally means "fear of water."

In chemistry, it could be said it's the physical property of molecules that are repelled from a mass of water. This is the case with wax paper where its can't get absorbed or fail to mix and rather tend to repel.

Hydrophile is basically opposite of hydrophobic which is the molecules attracted to water. A hydrophile is a molecule or other molecular entity that is attracted to water molecules and tends to be dissolved by water.

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a certain metal oxide has the formula mo. if a 39.46 g sample of mo is heated in an atmosphere of hydrogen to remove all of the oxygen as h2o, and 31.70 g of m is left over, which metal is m?

Answers

This atomic mass corresponds to the metal iron (Fe). Therefore, the metal in the MO compound is iron (Fe).

The given chemical formula of the metal oxide is MO, where M represents the metal cation. When the sample of MO is heated in an atmosphere of hydrogen, the oxygen from the metal oxide reacts with hydrogen to form water vapor. The balanced chemical equation for this reaction can be written as:

MO + H2 → H2O + M  

Here, one mole of MO reacts with one mole of H2 to produce one mole of water vapor and one mole of metal M. Using the molar mass of MO, which is the sum of the atomic masses of M and O, we can calculate the number of moles of MO present in the given sample:

Molar mass of MO = atomic mass of M + atomic mass of O

= M + 16

Mass of MO = 39.46 g

Number of moles of MO = mass of MO / molar mass of MO

= 39.46 g / (M + 16)

Now, according to the problem, all the oxygen in MO is removed, leaving behind 31.70 g of M. From the balanced chemical equation, we know that the mass of M produced is equal to the initial mass of MO minus the mass of water vapor produced. The molar mass of water is 18 g/mol, so the number of moles of water produced is:

Number of moles of H2O = mass of H2O / molar mass of H2O

= mass of oxygen removed / 16

= (39.46 g - 31.70 g) / 18

= 0.43 mol

Therefore, the number of moles of M produced is also 0.43 mol. We can use this value and the number of moles of MO calculated earlier to write an equation that relates the atomic mass of M to the number of moles of M:

0.43 mol = 39.46 g / (M + 16)

Solving for M gives us:

M = 55.85 g/mol

This atomic mass corresponds to the metal iron (Fe). Therefore, the metal in the MO compound is iron (Fe).

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IS ANYONE GOOD AT CHEMISTRY?? I need help pleaseeeee


I need the answers on how to get the answer for scratch work to turn in

Answers

the wavelength of a single photon of UV-A electromagnetic radiation that possesses an energy of 6.2 x 10^-19 J is approximately 3.210 x 10^-5 cm. The option closest to this answer is 3.2 x 10^-5 cm.

explain about energy ?

The energy E of a photon is related to its wavelength λ by the following formula:

E = h * c / λ

where h is the Planck's constant, c is the speed of light in a vacuum, and λ is the wavelength of the photon.

We are given the energy of a single photon of UV-A electromagnetic radiation as 6.2 x 10^-19 J. The values of h and c are:

h = 6.626 x 10^-34 J s

c = 2.998 x 10^8 m/s (the speed of light in a vacuum)

To convert the wavelength to centimeters, we can use the conversion factor of 1 m = 100 cm.

Now we can rearrange the formula to solve for the wavelength λ:

λ = h * c / E

Substituting the given values, we get:

λ = (6.626 x 10^-34 J s) * (2.998 x 10^8 m/s) / (6.2 x 10^-19 J)

λ = 3.210 x 10^-7 m = 3.210 x 10^-5 cm (after conversion)

Therefore, the wavelength of a single photon of UV-A electromagnetic radiation that possesses an energy of 6.2 x 10^-19 J is approximately 3.210 x 10^-5 cm. The option closest to this answer is 3.2 x 10^-5 cm.

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What is the name of CoCl2•6H20?

Answers

Answer:

The name of the chemical compound CoCl2•6H2O is cobalt(II) chloride hexahydrate.

if a bullet makes an oval shaped hole as it moves through glass, it entered the glass how? a. straight on b. at an angle c. from the top d. from the bottom

Answers

The correct option is b. at an angle; If a bullet passes through glass and leaves an oval-shaped hole, it entered the glass at an angle.

Explain the formation of oval-shaped hole?

An oval resembles the form, contour, or shape of an egg.

Take a moment to picture yourself grabbing your favourite ball as well as squeezing it in your hands. You would observe an oval-shaped object. The uneven curves and strange, semi-round egg form of the ball would prevent it from rolling or throwing as smoothly if you were to maintain that shape.Every shape contains characteristics, such as the flat shapes that can detect and outline on an object, such as edges, corners, and faces.

For instance:

A square has a square face, four sides, and four corners.Four sides, four corners, and a rectangle's face make up a rectangle.

Thus, If a bullet passes through glass and leaves an oval-shaped hole, it entered the glass at an angle.

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what physical or chemical properties were the defining ones to identify the three unknowns? for example, was the odor the most obvious? the flammability?

Answers

Properties that describe how a substance changes into a completely different substance are called chemical properties, general properties of matter such as color, density, hardness, are examples of physical properties.

The general properties of matter such as color, density, hardness, are examples of physical properties. Properties that describe how a substance changes into a completely different substance are called chemical properties. Flammability and corrosion/oxidation resistance are examples of chemical properties.

Flammability is the ability of matter to burn. When matter burns, it combines with oxygen and changes to different substances.

Properties that help geologists identify a mineral in a rock are: color, hardness, luster, crystal forms, density, and cleavage. Crystal form, cleavage, and hardness are determined primarily by the crystal structure at the atomic level.

Flammability is a measure of how quickly a specific material is capable of catching fire and burning. It indicates the ease with which a material can ignite and the intensity with which it burns once it catches on fire.

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+Brainliest With Correct Answer/Solution And Complete Solution.

A car starts from rest and moves at the speed of 30km/h after half an hour. What is the car's acceleration?

Answers

The car's acceleration is 0.0046 m/s². Acceleration is a physical quantity that describes the rate of change in velocity of an object over time.

Describe Acceleration?

It is a vector quantity, which means it has both magnitude and direction, and is measured in units of meters per second squared (m/s²).

When an object is accelerating, its velocity is changing, either by increasing or decreasing in speed or changing direction. The magnitude of the acceleration depends on the force applied to the object, which can come from a variety of sources such as gravity, friction, or electromagnetism.

The formula for acceleration is:

a = (v2 - v1) / t

where a is the acceleration, v2 is the final velocity, v1 is the initial velocity, and t is the time it takes to go from v1 to v2.

If an object is moving in a straight line with a constant acceleration, its velocity can be calculated by the following equation:

v = v0 + at

where v is the final velocity, v0 is the initial velocity, a is the acceleration, and t is the time.

Acceleration is a fundamental concept in physics and is used to describe the motion of objects in a wide variety of situations, including free-fall, projectile motion, circular motion, and the behavior of fluids. It is also essential in engineering and design, where it is used to calculate the performance and efficiency of machines and vehicles.

To solve the problem, we need to use the equation:

acceleration = (final velocity - initial velocity) / time

We are given that the car starts from rest, so the initial velocity, u = 0.

After half an hour, the car moves at a speed of 30 km/h. We need to convert this to m/s as follows:

30 km/h = (30 × 1000 m) / (60 × 60 s) = 8.33 m/s

The time taken, t = 0.5 h = 1800 s

Substituting the values into the equation, we get:

acceleration = (8.33 m/s - 0) / 1800 s

acceleration = 0.0046 m/s²

Therefore, the car's acceleration is 0.0046 m/s².

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several small molecules are important to biochemical systems. you have isolated one of these and to identify it you determine its molar mass. you release 0.37 g of the gas into a flask with a volume of 732 ml at 21 °c. the pressure in the flask is 209 torr. what is the unknown gas?

Answers

The molar mass of 34.26 g/mol is consistent with the molar mass of nitrogen gas (N2), which is 28.02 g/mol. Therefore, the unknown gas is likely nitrogen.

To identify the unknown gas, you need to determine its molar mass. The ideal gas law can be used to calculate the molar mass. The ideal gas law is given as:

PV = nRT

where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature in kelvin. To calculate the molar mass, we'll rearrange the ideal gas law to solve for n:

n = PV / RT

The gas constant R has a value of 0.0821 L-atm/mol-K. To convert the temperature to kelvin, add 273.15 to the temperature in °C. The pressure must be converted from torr to atm. One atm is equal to 760 torr, so:

P = 209 torr / 760 torr/atm

P = 0.2758 atm

The volume must also be converted from mL to L. 1 L = 1000 mL, so:

V = 732 mL / 1000 mL/L

V = 0.732 L

Now that we have all the required values, we can plug them into the ideal gas law equation to calculate the number of moles:

n = 0.2758 atm * 0.732 L / (0.0821 L-atm/mol-K * (21 + 273.15 K))

n = 0.0108 mol.

Since the mass of the gas is given as 0.37 g, we can calculate the molar mass as:

Molar mass = mass / moles

= 0.37 g / 0.0108 mol

= 34.26 g/mol

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When I do (10*1000)/(1x10^-6) I don’t get that answer what am I doing wrong

Answers

One gram is 10⁶ micrograms. One kilogram is 1000 grams. Then 1 kg is 10⁹ micrograms. Therefore, 10 kg is equal to 10¹⁰ grams.

What are mass units ?

Mass of a substance is the measure of its total amount. Mass is an extensive unit. Mass can be expressed in various units. The SI unit of mass is grams.

We know that,1 kg = 1000 g = 10³ g.

one microgram = 10⁻⁶ g or,

one gram = 10⁶ micrograms.

Now, one kg = 10³ g, then,

one kg = 10³× 10⁶ micrograms  = 10⁹ micrograms.

Then micrograms equivalent to 10 kg is 10 times the amount in 1 kilogram

that is, 10 kg = 10 ×10⁹ micrograms  = 10¹⁰ micrograms.

This way, you will get the correct answer.

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What are atoms of the same element that have different mass numbers?

Answers

Answer:

isotope

Explanation:

Consider the reaction:
2N2O (g) = 2N2 (g) + O2 (g)
A. Express the rate of the reaction with respect to each of the reactants and products.
B. In the first 15.0 s of the reaction, 0.015 mol of O2 is produced in a reaction vessel with a volume of 0.500 L. What is the average rate of the reaction over this time interval.
C. Predict the rate of change in the concentration of N2O over this time interval. In other words, what is [N2O]/t?

Answers

A. The rate of the reaction with respect to each of the reactants and products is given by:
Rate = -1/2 Δ[N2O]/Δt = 1/2 Δ[N2]/Δt = Δ[O2]/Δt

Note that the negative sign in the rate of change of N2O is due to the fact that the concentration of N2O is decreasing with time, while the positive signs for the other two rates indicate that the concentrations of N2 and O2 are increasing with time.
B. The average rate of the reaction over the first 15.0 s can be calculated by dividing the change in the concentration of O2 by the time interval:
Average rate of reaction = Δ[O2]/Δt = (0.015 mol)/(15.0 s) = 0.001 mol/s
Note that the reaction is given in terms of moles of O2 produced, so we can directly use the change in the concentration of O2 to calculate the rate.
C. The rate of change in the concentration of N2O over the first 15.0 s can be predicted using the rate expression:
Rate = -1/2 Δ[N2O]/Δt
We can rearrange this equation to solve for the rate of change in the concentration of N2O:
Δ[N2O]/Δt = -2 × Rate
Substituting the average rate of reaction calculated in part B, we get:
Δ[N2O]/Δt = -2 × 0.001 mol/s = -0.002 mol/s
This indicates that the concentration of N2O is decreasing at a rate of 0.002 mol/s over the first 15.0 s of the reaction.


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if the rate of a reaction is four times as fast when the concentration of a reactant is doubled, what is the order of the reaction with respect to that reactant?

Answers

The order of reaction is 1/2 with respect to that reactant when the concentration of a reactant is doubled.

Rate of reaction =k[A] ⁿ where n is the order of reaction

=>r₁=k[A₁]ⁿ-----(eq1)

=>r₂=k[A₂]ⁿ-------(eq2)

Dividing eq2 with eq1

=>r₂/r₁=[A₂]ⁿ / [A₁]ⁿ

=>2/1 = [4/1]ⁿ

=>4ⁿ=2

=>n=1/2

The order of reaction is characterized as the power reliance of the rate on the centralization of every reactant.

When the rate law of a reaction is resolved a similar regulation can be utilized to totally figure out the creation of the response combination. At the end of the day, the reaction request is the type to which the convergence of the particular species is raised, and it shows to what level the centralization of the species influences the pace of reaction. It likewise demonstrates up to which degree the species makes an extensive difference. For instance, the pace of a first order of reaction is resolved simply by the convergence of one animal types in the reaction.

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Chemical bonds hold together the atoms that make up a molecule. molecules may also be attached to one another by chemical bonds.
a. True
b. False

Answers

Answer:

False

Explanation:

When atoms join together to form molecules, they are held together by chemical bonds. These bonds form as a result of the sharing or exchange of electrons between the atoms. It is only the electrons in the outermost shell that ever get involved in bonding.

What is the boiling point, in °C, of a 0.527 m aqueous solution of LiBr?
BP(water) = 100 °C
Kb (water) = 0.512 °C/m [ ? ] °C

Answers

To solve this we must know the concept behind the phenomenon of elevation in boiling point when a non volatile solute is added to any solvent. Therefore, boiling point in °C of a 0.527 m aqueous solution of LiBr is  100.54 °C.

Mathematically,

ΔT= Kb× molality

The complete balanced equation can be written as

LiBr → Li⁺ + Br⁻ [two ions]

substituting all the given values in the above mathematical expression, we get

(0.527 m LiBr) x (2 mol ions / 1 mol LiBr) = 1.054 m ions

(0.512 °C/m) x (1.054 m) = 0.540 °C change

100.00°C + 0.540 °C = 100.54 °C

Therefore, the boiling point in °C of a 0.527 m aqueous solution of LiBr is  100.54 °C.

What is elevation in boiling point ?

The boiling point of a solvent rises whenever a non-volatile solute is added.

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which features make H2O a polar molecule? select all that apply
-the molecule has a bent molecular shape
-the molecule has an uneven distribution of electron density
-the electrons are distributed unevenly within each bond of the molecule
-each H2O molecule has a different shape
-the molecule is electrically charged

Answers

The features that make H₂O a polar molecule are:

The molecule has a bent molecular shape.The molecule has an uneven distribution of electron densityThe electrons are distributed unevenly within each bond of the molecule

What is a polar covalent bond?

It is a bond that occurs when the bonding atoms have a difference in electronegativity causing the generation of an area with higher electron density creating a positive pole and a negative pole.

The oxygen atom in water has a partial negative charge, while the hydrogen atoms have a partial positive charge. This results in an overall dipole moment, with the molecule having a slightly positive end and a slightly negative end.

H₂O is a polar molecule due to its bent molecular shape, an uneven distribution of electron density, and uneven electron distribution within each bond of the molecule. This results in an overall electrical charge for the molecule.

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why was it necessary to use different concentrations of aqueous isopropanol in the step gradient separation?

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The use of different concentrations of aqueous isopropanol in a step gradient separation is often done to achieve a better separation of molecules or compounds in a sample.

The use of different concentrations of aqueous isopropanol in a step gradient separation is often done to achieve a better separation of molecules or compounds in a sample.

In step gradient separation, a series of solutions with increasing or decreasing concentrations of a solvent is used to separate molecules based on their different affinities for the solvent. By gradually changing the solvent composition, molecules with different properties (such as size, polarity, or charge) can be separated from each other.

In the case of aqueous isopropanol, changing the concentration of isopropanol in the solution can change the polarity of the solvent system. This can be useful for separating molecules that have different polarities, as they will have different affinities for the solvent at different concentrations.

For example, in a mixture of polar and nonpolar compounds, a low concentration of isopropanol may be more effective at eluting the polar compounds, while a higher concentration may be needed to elute the nonpolar compounds. By using a series of solutions with different isopropanol concentrations, a step gradient separation can be achieved that separates the different compounds in the mixture.

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how is a limiting reactant problem different from other stoichiometry problems? (what is your clue that it is a limiting reactant problem?)

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A limiting reactant problem is a type of stoichiometry problem that involves determining which reactant in a chemical reaction will be completely consumed, and therefore limit the amount of product that can be formed.

The key clue that a problem is a limiting reactant problem is the presence of information about the amounts or masses of two or more reactants that are involved in a chemical reaction. In a limiting reactant problem, you are typically given the amounts of two or more reactants, and asked to determine the amount of product that can be formed.

To solve a limiting reactant problem, you must first determine the balanced chemical equation for the reaction, and then use stoichiometry to calculate the theoretical amount of product that can be formed from each reactant. The reactant that produces the smallest amount of product is the limiting reactant, because it will be completely consumed in the reaction, while the other reactant(s) will be left over.

The calculation of the limiting reactant and the amount of product produced from it is what sets a limiting reactant problem apart from other stoichiometry problems. In other types of stoichiometry problems, you may be given the amount of a single reactant or product, and asked to find the amount of another reactant or product using stoichiometry.

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