the sample of carbon from a wooden artecraft is found to give 7g of carbon c/min/g.what is the approximate age if the half life of carbon is 5770 years​

Answers

Answer 1

7 years is the approximate age of the wooden artifact.

To determine the approximate age of the wooden artifact, we can use the concept of carbon dating. Carbon dating relies on the decay of carbon-14 (C-14) in organic materials to estimate their age.

The half-life of carbon-14 is approximately 5770 years. This means that after each half-life period, the amount of C-14 in a sample decreases by half. By measuring the remaining amount of C-14 in the sample, we can estimate its age.

Given that the wooden artifact contains 7 grams of carbon and the rate of decay is 1 disintegration per minute per gram (dpm/g), we can calculate the age as follows:

Convert the decay rate to the rate of disintegrations per minute for the entire sample:

Decay rate for the entire sample = decay rate per gram × sample mass

Decay rate for the entire sample = 1 dpm/g × 7 g = 7 dpm

Calculate the number of half-lives that have occurred:

Number of half-lives = (decay rate for the entire sample) / (decay rate per half-life)

Number of half-lives = 7 dpm / (1 dpm/g × 5770 years) = 7 / 5770

Calculate the age of the artifact:

Age = (number of half-lives) × (half-life of carbon-14)

Age = (7 / 5770) × 5770 years = 7 years

Therefore, the approximate age of the wooden artifact, based on the given information, is approximately 7 years.

It's important to note that this simplified calculation assumes a constant decay rate over time and neglects other factors that may affect the accuracy of carbon dating, such as contamination and variations in C-14 production rates. Carbon dating is most reliable for materials up to around 50,000 years old.

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Related Questions

What the expected outcome is, if the MDS is successfully implemented

Answers

If the MDS (Minimum Data Set) is successfully implemented, several positive outcomes can be expected. The MDS is a standardized assessment tool used in healthcare settings to evaluate the physical, mental, and psychosocial well-being of patients.


Its successful implementation can lead to improved patient care, more efficient resource allocation, and enhanced data analysis.With the MDS in place, healthcare providers can gather consistent and comprehensive data about patients, enabling better understanding of their needs and tailoring of individualized care plans.

This can result in improved treatment outcomes and patient satisfaction. Additionally, the MDS facilitates effective communication and information sharing among healthcare professionals, leading to coordinated care and reduced errors.From a broader perspective, successful implementation of the MDS allows for accurate and reliable data collection, enabling robust research and evidence-based decision-making.

This can contribute to advancements in healthcare practices, policy development, and quality improvement initiatives. Ultimately, the successful implementation of the MDS can enhance patient outcomes, improve healthcare delivery, and drive positive changes in the healthcare system as a whole.

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What is the volume of water (in mL) of 19.5487 g of water (measured at 25.4 °C)?

Answers

To determine the volume of water, we need to account for the density of water, which changes with temperature. However, at 25.4°C, the density of water is close enough to 1 g/mL for practical purposes. Therefore, we can approximate the volume of water to be the same as its mass.

Given:

Mass of water = 19.5487 g

Volume of water = Mass of water

Therefore, the volume of water is approximately 19.5487 mL.

How many grams of helium will occupy a volume of 575 mL at 760 mmHg and 20°C?

Answers

0.0956 grams of helium will occupy a volume of 575 mL at 760 mmHg and 20°C

To calculate the mass of helium that will occupy a given volume at a specific temperature and pressure, we need to use the ideal gas law equation: PV = nRT. Here's how you can solve the problem:

Convert the volume to liters: 575 mL = 575/1000 = 0.575 L.

Convert the pressure to atmospheres: 760 mmHg = 760/760 = 1 atm.

Convert the temperature to Kelvin: 20°C = 20 + 273.15 = 293.15 K.

Plug the values into the ideal gas law equation: (1 atm) * (0.575 L) = n * (0.0821 L·atm/(mol·K)) * (293.15 K).

Rearrange the equation to solve for n (the number of moles): n = (1 atm * 0.575 L) / (0.0821 L·atm/(mol·K) * 293.15 K).

Calculate the value of n: n = 0.0239 moles.

To find the mass, we need to know the molar mass of helium, which is approximately 4 grams per mole.

Multiply the molar mass by the number of moles: 4 g/mol * 0.0239 moles = 0.0956 grams.

Therefore, approximately 0.0956 grams of helium will occupy a volume of 575 mL at 760 mmHg and 20°C.

Note: The ideal gas law assumes ideal gas behavior, and the calculated result may not be accurate under extreme conditions or for gases that deviate significantly from ideal behavior.

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Please help answer easy question

How many water molecules are in 5.2 moles of water? (C.8B)


5.2 x 1024 molecules


6.02 x 1023 molecules


8.64 x 1023 molecules


3.13 x 1024 molecules

Answers

Answer:

There are 3.13 x 10^24 water molecules in 5.2 moles of water.

How many molecules are there in 5.00 moles of glucose, C6H12O6?

Answers

There are 3.011 × 10²⁴ molecules of glucose (C₆H₁₂O₆) in 5.00 moles of glucose.

How to find the number of molecules

To determine the number of molecules in 5.00 moles of glucose C₆H₁₂O₆ we use Avogadro's numbe which is approximately 6.022 × 10^23 molecules per mole.

Number of moles of glucose molecules = Number of moles of glucose × Avogadro's number

number of moles of glucose molecules = 5.00 moles × 6.022 × 10²³molecules/mole

number of moles of glucose molecules = 3.011 × 10²⁴ molecules

we can there fore say that the number of glucose (C₆H₁₂O₆) molecules in 5.00 moles of glucose is 3.011 × 10²⁴ molecules.

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PART A:
When aluminum reacts in hydrochloric acid, how many grams of hydrochloric acid would be required to produce 80g of hydrogen gas?


PART B:
How many molecules of water would be produced in the reaction of 741g of magnesium hydroxide?

i’m soo stumped, pls help :,)

Answers

PART A: Approximately 2,887.23 grams of hydrochloric acid would be required to produce 80 grams of hydrogen gas.

PART B: Approximately 7.65 x 10^24 water molecules would be produced.

PART A: To determine the grams of hydrochloric acid required to produce 80g of hydrogen gas, we need to consider the balanced chemical equation for the reaction between aluminum (Al) and hydrochloric acid (HCl):

2Al + 6HCl → 2AlCl₃ + 3H₂

From the equation, we can see that for every 3 moles of hydrogen gas produced, 6 moles of hydrochloric acid are required. To calculate the grams of hydrochloric acid needed, we need to use the molar mass of HCl, which is approximately 36.46 g/mol. First, we convert the grams of hydrogen gas to moles using the molar mass of hydrogen (H₂), which is approximately 2.02 g/mol: 80 g H₂ * (1 mol H₂ / 2.02 g H₂) = 39.60 mol H₂

Since the mole ratio of HCl to H₂ is 6:3, we multiply the moles of hydrogen by the ratio: 39.60 mol H₂ * (6 mol HCl / 3 mol H₂) = 79.20 mol HCl

Finally, we convert the moles of HCl to grams using the molar mass of HCl: 79.20 mol HCl * (36.46 g HCl / 1 mol HCl) ≈ 2,887.23 g HCl

Therefore, approximately 2,887.23 grams of hydrochloric acid would be required to produce 80 grams of hydrogen gas.

PART B: To determine the number of water molecules produced in the reaction of 741 grams of magnesium hydroxide (Mg(OH)₂), we need to consider the balanced chemical equation for the reaction:

Mg(OH)₂ → MgO + H₂O

From the equation, we can see that for every one mole of magnesium hydroxide, one mole of water is produced. To calculate the moles of magnesium hydroxide, we divide the given grams by the molar mass of Mg(OH)₂: 741 g Mg(OH)₂ * (1 mol Mg(OH)₂ / molar mass of Mg(OH)₂) = X mol Mg(OH)₂

The molar mass of Mg(OH)₂ can be calculated by adding the atomic masses of magnesium (Mg), oxygen (O), and hydrogen (H) together:

Mg: 24.31 g/mol

O: 16.00 g/mol

H: 1.01 g/mol

Molar mass of Mg(OH)₂ = (24.31 g/mol) + 2(16.00 g/mol) + 2(1.01 g/mol) = 58.33 g/mol

Substituting the values: 741 g Mg(OH)₂ * (1 mol Mg(OH)₂ / 58.33 g Mg(OH)₂) ≈ 12.70 mol Mg(OH)₂

Since the mole ratio of water to Mg(OH)₂ is 1:1, the number of water molecules produced is the same as the moles of Mg(OH)₂: 12.70 mol H₂O

To calculate the number of water molecules, we multiply the moles of H₂O by Avogadro's number, which is approximately 6.022 x 10^23 molecules/mol: 12.70 mol H₂O * (6.022 x 10^23 molecules/mol) ≈ 7.65 x 10^24 molecules of water .Therefore, approximately 7.65 x 10^24 water molecules would be produced.

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5. A container has oxygen and helium in it. The total pressure is known to be 6.75 atm. What is the pressure of oxygen if helium's pressure is 2.25 atm?

Answers

Answer:

4.50 atm

Explanation:

Dalton's law of partial pressures lets us find the individual pressures of gases within a mixture.

Dalton's Law of Partial Pressures

Dalton's law of partial pressures states that the total pressure of the mixture is equal to the sum of the partial pressures. Partial pressures refer to the individual pressures of the gases within the mixture. In equation form, Dalton's law of partial pressures is:

[tex]P_{T}= P_{A} +P_{B} +P_{C} ...[/tex]

Using this concept and equation, we can find the pressure of oxygen.

Finding P of Oxygen

First, let's write an equation to represent this situation. We know that the total pressure is equal to the pressure of helium plus oxygen.

[tex]P_{T} =P_{He} + P_O[/tex]

Now, we can plug in the information we know,

6.75 atm = 2.25 atm + P₀

Finally, solve for P₀

P₀ = 4.50 atm

Remember that since this calculation is based on measured values, we need to round according to significant figure rules. This means that the pressure of oxygen is 4.50 atm.

The pressure of oxygen if helium's pressure is 2.25 atm is 4.50 atm.

To determine the pressure of oxygen in the container, we can use Dalton's law of partial pressures, which states that the total pressure of a mixture of gases is equal to the sum of the partial pressures of each gas.

In this case, the total pressure is given as 6.75 atm, and the pressure of helium is given as 2.25 atm. We need to find the pressure of oxygen (O2).

According to Dalton's law:

Total pressure = Pressure of oxygen + Pressure of helium

6.75 atm = Pressure of oxygen + 2.25 atm

To find the pressure of oxygen, we can rearrange the equation:

Pressure of oxygen = Total pressure - Pressure of helium

Pressure of oxygen = 6.75 atm - 2.25 atm

Pressure of oxygen = 4.50 atm

Therefore, the pressure of oxygen in the container is 4.50 atm.

This result is obtained by applying Dalton's law, which states that in a mixture of gases, each gas contributes to the total pressure independently. The individual pressures of the gases can be determined by subtracting the pressure of one gas from the total pressure.

In this case, the pressure of oxygen is calculated by subtracting the pressure of helium (known as the partial pressure of helium) from the total pressure of the mixture. This assumes that the gases do not interact chemically, and their behavior can be considered ideal.

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A solution of KC2H3O2 is diluted from its original concentration of 2.3 M to a new concentration 2.1 M. If it’s new volume is 191.8 mL, what was the original volume of the concentration solution?

Answers

The original volume of the concentrated solution was 182.7 mL.

To solve this problem, we can use the formula for dilution:

C1V1 = C2V2

Where C1 is the initial concentration, V1 is the initial volume, C2 is the final concentration, and V2 is the final volume.

We are given that the initial concentration (C1) is 2.3 M, the final concentration (C2) is 2.1 M, and the final volume (V2) is 191.8 mL. We want to find the initial volume (V1).

Plugging in the values we know into the dilution formula, we get:

(2.3 M) V1 = (2.1 M) (191.8 mL)

Simplifying this expression, we can solve for V1:

V1 = (2.1 M) (191.8 mL) / (2.3 M)

V1 = 182.7 mL

It's important to note that the units of concentration and volume must be consistent in this formula. In this case, the concentrations are given in units of M (moles per liter), and the volumes are given in units of mL (milliliters).

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in which of the following molecules , the highlighted carbon atom contains two unhybridized p-orbitals?
A. CH4
B. CH≡CH
C. CH3‒CH3
D. CH2=CH2

Answers

Answer:

D

Explanation:

The correct answer is D. In ethylene (CH2=CH2), the carbon atoms in the double bond have two unhybridized p-orbitals.

carbon steel styrofoam silicon gold

Place the materials in the correct order with the most conductive first. 1 2 3 4​

Answers

The correct order of materials from most conductive to least conductive is as follows:

GoldSiliconCarbon steelStyrofoam

What is a conductive material?

Conductive materials are those that can conduct electricity to a greater or lesser extent.

some electrical Conductors include:

Silver.Gold.Copper.Aluminum.Mercury.Steel.Iron.

In conclusion, Silicon is described as a semiconductor material that has moderate conductivity which is  widely used in electronic devices such as transistors and integrated circuits.

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What type of compound is represented by the graph at right? A. strong base B. strong acid C. weak base D. weak acid

Answers

The type of compound represented by the graph at right is a strong acid (option B).

What is a strong acid?

An acid is generally any compound capable of dissociating into its respective constituent ions when in an aqueous solution.

An acid is categorised as strong or weak depending on whether it can dissociate completely or partially. A strong acid dissociates completely in water.

According to this question, HA, when added to water, dissociates into H+ and A- ions, hence, is a strong acid.

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A balloon filled with helium gas has a volume of 500 mL at a pressure of 1 atm. The balloon is released and reaches an altitude of 6.5km where the pressure is 0.5 atm. Assuming that the temperature is constant, what volume does the gas occupy at this height?

Answers

At an altitude of 6.5 km where the pressure is 0.5 atm, the volume of the gas in the balloon would be 1000 mL.

To solve this problem, we can use Boyle's Law, which states that the pressure and volume of a gas are inversely proportional at constant temperature. Mathematically, Boyle's Law can be expressed as:

P₁V₁ = P₂V₂

where P₁ and V₁ are the initial pressure and volume, and P₂ and V₂ are the final pressure and volume.

In this case, the initial pressure and volume are given as 1 atm and 500 mL, respectively. The final pressure is 0.5 atm, and we need to find the final volume.

Plugging the given values into Boyle's Law, we have:

(1 atm)(500 mL) = (0.5 atm)(V₂)

Simplifying the equation, we get:

500 mL atm = 0.5 V₂ atm

To solve for V₂, we divide both sides of the equation by 0.5 atm:

V₂ = (500 mL atm) / (0.5 atm)

V₂ = 1000 mL

Therefore, at an altitude of 6.5 km where the pressure is 0.5 atm, the volume of the gas in the balloon would be 1000 mL.

It's important to note that this calculation assumes that the temperature remains constant throughout the process. Additionally, in reality, the temperature may change with altitude, which could affect the behavior of the gas.

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1. (04.05 LC)
What does the atomic number of an atom tell us? (2 points)
O How much the atom weighs
The number of protons in the atom
Which column the element is in on the periodic table
O The number of electrons it is likely to lose

Answers

The atomic number provides essential information about an element's identity, including the number of protons and its position in the periodic table, which helps determine its chemical behavior and properties.

The atomic number of an atom tells us:

The number of protons in the atom: The atomic number represents the unique identifier for an element and indicates the number of protons in the nucleus of an atom.

Each element has a distinct atomic number, and this number determines its place on the periodic table. For example, hydrogen has an atomic number of 1, which means it has one proton in its nucleus.

Which column the element is in on the periodic table: The atomic number determines the element's position in the periodic table. Elements are arranged in order of increasing atomic number, and each column (group) on the periodic table represents elements with similar chemical properties.

For instance, all elements in Group 1 have an atomic number of 1 and share similar characteristics, such as a tendency to lose one electron and form a +1 ion.

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the mixing of acetic acid with sodium acetate will produce a buffer solution with a pH value
I. < 7.0
II. > 7.0
III. = 7.0
A. I only.
B. II only.
C. III only.
D. II and III.

Answers

The mixing of acetic acid with sodium acetate will produce a buffer solution with a pH value is > 7.0, hence option B is correct.

The pH scale determines how acidic or basic water is. The range is 0 to 14, with 7 representing neutrality.

Acidity is indicated by pH values below 7, whereas baseness is shown by pH values above 7. In reality, pH is a measurement of the proportion of free hydrogen and hydroxyl ions in water.

When sodium acetate is added to an acetic acid solution, the pH value rises because the concentration of h+ ions drops as the salt concentration rises in the buffer solution.

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Question attached thank you

Answers

If the temperature is 273 K, the partial pressure of O₂ is 1.40 atm.

According to the given information:

Volume of bottle  = 2.00 L

Total pressure = 5.00 atm

Mixture of  N₂, O₂ and CO₂

Moles of N₂ = 0.29 moles

Partial pressure of CO₂ = 0.350 atm

Temperature = 273 K

It is known that

PV = nRT

P = pressure

V = volume

n = no of moles

R = universal gas constant

= 0.08206 L atm/mol K

T = temperature

so

To find total no of moles

PV = nRT

n = PV/RT

= (5.00 atm × 2.00 L) ÷ ( 0.08206 L atm/mol K × 273 K)

= 0.446 moles

Number of moles of CO₂

n = PV/RT

= (0.350 atm × 2.00 L) ÷ ( 0.08206 L atm/mol K × 273 K)

= 0.0312 moles CO₂

Total no of moles = moles of O₂ +  moles of CO₂ + moles of N₂

0.446 moles = moles of O₂ + 0.29  + 0.0312

Moles of O₂ = 0.125

Partial pressure of O₂ = (no of moles of O2) × R × T/V

= (0.125 moles × 0.08206 L atm/mol K × 273 K)/ 2.00 L

= 1.40 atm

The partial pressure of O₂ is 1.40 atm.

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What is the pressure in bar of a 4.50 L tank with 3.35 moles of oxygen at 39.3 °C? R = 0.08314 L・bar/mol・K.

Answers

Answer:

19.3 bar

Explanation:

The ideal gas law allows us to calculate different characteristics of gases.

Ideal Gas Law

One way to calculate different values of gases we can use the ideal gas law. This law was named for the fact that it assumes gases behave "ideally." This means that the gases have perfectly elastic collisions and experience no intermolecular forces (IMFs). In equation form, this law is:

PV = nRT

In the equation, P is pressure, V is volume, n is moles, R is the gas constant, and T is the temperature in Kelvin. It is important to ensure that the units of the gas constant match the units of pressure that you are solving for.

Finding Pressure

To find pressure, we need to plug in the information we know and solve for P. The units of the gas constant we are given already match the pressure, so we do not need to convert. However, the temperature is given in °C not K. This means we need to convert; to do this, add 273 to °C.

39.3 °C + 273 = 312.3K

Now, we can plug all of our information into the ideal gas law.

P · 4.50L =  3.35mol · 0.08314L・bar/mol・K · 312.3K

To find P, divide both sides by 4.50.

P = 19.33 bar

Since the question is based on measured values, we need to round according to significant figure rules. The measured values in the question have 3 sig figs, so our answer should also have 3. This means the pressure is 19.3 bar.

What is the volume of iodine if it has a mass of 2.5kg and a density of 4.93g/cm3?

Answers


2.5kg x 1000g/1kg= 2500g
Volume = mass/density
V=2500g/4.93g/cm3
V= 507cm3

2. The largest container on popcorn on record was 106 m3. There is water vapor (a gas) inside popcorn kernels. Why does adding heat pop the kernel into corn?

Answers

Answer:

Explanation:

h 7

Calculate the density of aluminum if it has a mass of 83.6g and a volume of 23.99ml

Answers

Answer:

[tex] \huge{ \boxed{3.48 \: g/ml}}[/tex]

Explanation:

The density of the aluminum can be found by using the formula;

[tex]density( \rho) = \dfrac{mass}{volume} [/tex]

From the question

mass = 83.6 g

volume = 23.99 ml

[tex] \rho = \dfrac{83.6}{23.99} = 3.4847[/tex]

We have the final answer as

3.48 g/ml

list the pros and cons of Cobalt-60. but for pest control

(60 POINTs will give BRAINIEST FOR the amount of EFFORT you put into it)

Answers

Hello !

Pros :Cobalt 60 can sterilize medical equipment.Can treat cancer.The Gamma Rays that are emitted from cobalt-60 kill pathogens and bacteria without damaging what is being exposed to the rays.

Cons :-Has a short half life. Internal exposure (absorption of 60Co in kidney, liver, bones) to the gamma rays emitted from Cobalt 60 can result in cancer.External exposure to radiation can result in burns, radiation sickness, and death.

If the value of Ksp for Cd (IO3)2 at 25 °C is 2.5 × 10-8, what is the molar solubility of Cd (IO3)2?

Answers

To determine the molar solubility of Cd(IO₃)₂, it is required to use the solubility product constant (Ksp) and the stoichiometry of the compound.

Given information,

Ksp = 2.5 × 10⁻⁸

Temperature = 25°C

The balanced equation for the dissolution of Cd(IO₃)₂ is:

Cd(IO₃)₂(s) ⇌ Cd₂+(aq) + 2 IO₃⁻(aq)

The expression for the solubility product constant is given by:

Ksp = [Cd²⁺][IO₃⁻]²

The equilibrium concentrations can be expressed as:

[Cd²⁺] = x mol/L

[IO₃⁻] = 2x mol/L

Substituting these values into the Ksp expression:

Ksp = (x)(2x)² = 4x³

Now,

2.5 × 10⁻⁸ = 4x³

Solving for x:

x³ = (2.5 × 10⁻⁸)/4

x = (2.5 × 10⁻⁸)/[tex]4^{1/3}[/tex]

x = (2.5 ×  10⁻⁸)/1.58

x= 1.58 × 10⁻⁸

Therefore, the molar solubility is 1.58 × 10⁻⁸.

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, at den ppe A sample of oxygen occupies a volume of 1 dm³ at 500K and 1.01 x 10³ Nm ². What will its volume be at 2.02 x 10³ Nm2 and 400K. W n​

Answers

The volume of oxygen will be 0.404 dm³ at 2.02 x 10³ Nm² and 400 K.

To solve this problem, we can use the ideal gas law equation, which states:

PV = nRT

Where:

P = pressure

V = volume

n = number of moles

R = ideal gas constant

T = temperature

Since we are dealing with the same sample of oxygen, the number of moles (n) and the ideal gas constant (R) will remain constant. Therefore, we can rewrite the equation as:

P₁V₁ / T₁ = P₂V₂ / T₂

Where the subscripts 1 and 2 represent the initial and final conditions, respectively.

Given:

V₁ = 1 dm³ = 1 L = 0.001 m³

T₁ = 500 K

P₁ = 1.01 x 10³ Nm²

P₂ = 2.02 x 10³ Nm²

T₂ = 400 K

Let's substitute the values into the equation and solve for V₂:

(1.01 x 10³ Nm²)(0.001 m³) / 500 K = (2.02 x 10³ Nm²)(V₂) / 400 K

(1.01 x 10³ Nm²)(0.001 m³)(400 K) = (2.02 x 10³ Nm²)(V₂)(500 K)

V₂ = [(1.01 x 10³ Nm²)(0.001 m³)(400 K)] / [(2.02 x 10³ Nm²)(500 K)]

Now let's calculate the value of V₂:

V₂ = (0.404 Nm)(0.001 m³) / (1.01 Nm)

V₂ = 0.000404 m³ = 0.404 dm³

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Calculate the relative atomic mass

Answers

The relative atomic mass of the sample of rubidium is approximately 48.6.

To calculate the relative atomic mass of the sample of rubidium using the given information, we can use the following steps:

Calculate the contribution of each isotope to the average atomic mass based on their abundance:

Isotope 1: Relative abundance = 72%, Mass number = 48

Isotope 2: Relative abundance = 28%, Mass number = 50

Contribution of isotope 1 = (72/100) * 48

Contribution of isotope 2 = (28/100) * 50

Sum the contributions of each isotope to obtain the average atomic mass:

Average atomic mass = Contribution of isotope 1 + Contribution of isotope 2

Calculate the values for the contributions and sum them up.

Round the average atomic mass to the appropriate number of significant figures.

Let's perform the calculations:

Contribution of isotope 1 = (72/100) * 48 = 34.56

Contribution of isotope 2 = (28/100) * 50 = 14.00

Average atomic mass = Contribution of isotope 1 + Contribution of isotope 2

Average atomic mass = 34.56 + 14.00 = 48.56

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Consider the general reversible reaction. What is the equilibrium constant expression for the given system?

Answers

The correct equilibrium expression for the reaction is shown by option D

What is equilibrium expression?

The law of mass action, from which the equilibrium expression is derived, states that, under constant temperature conditions, at equilibrium, the ratio of the product of the concentrations of the products to the product of the concentrations of the reactants is constant.

The relationship between the concentrations (or partial pressures) of reactants and products in a chemical process at equilibrium is described by an equilibrium expression.

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The chemical structure of glycine is shown below. Highlight each atom that is in an amino group

Answers

Answer:

I'm sorry, but I'm not able to view the chemical structure of glycine.

A 3.60 cm³ sample of solid tin metal has a density of 5.770 g/cm3. What volume does this sample of tin occupy in its liquid state? The density of liquid tin is 6.990g/cm³. ​

Answers

The volume that the sample of tin occupies in its liquid state is approximately 2.974 cm³.

To find the volume of the sample of tin in its liquid state, we can use the concept of density and the given information.

Given:

Initial volume of the sample (solid tin) = 3.60 cm³

Density of solid tin = 5.770 g/cm³

Density of liquid tin = 6.990 g/cm³

To calculate the volume of the sample in its liquid state, we can use the following formula:

Volume = Mass / Density

First, let's calculate the mass of the sample of tin in its solid state using the density and volume information:

Mass of solid tin = Density of solid tin * Volume of solid tin

= 5.770 g/cm³ * 3.60 cm³

Next, we can calculate the volume of the sample in its liquid state using the mass of the sample and the density of liquid tin:

Volume of liquid tin = Mass of solid tin / Density of liquid tin

Now, let's perform the calculations:

Mass of solid tin = 5.770 g/cm³ * 3.60 cm³

= 20.772 g

Volume of liquid tin = Mass of solid tin / Density of liquid tin

= 20.772 g / 6.990 g/cm³

Finally, calculate the volume:

Volume of liquid tin = 2.974 cm³ (approximately)

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. Liquid crystals have wide practical application due to their optical and electrical properties.
Which of the following statements is INCORRECT about the use of liquid crystals?
A. They can be used as temperature sensors.
B. They are used in the dial of analogue watches.
C. They are used in skin thermography to detect blockage of veins.
D. They can be used to find the point of potential failure in a electrical circuits

Answers

Answer:

C. They are used in skin thermography to detect blockage of veins.

Explanation:

Liquid crystals are not typically used in skin thermography to detect blockage of veins. Skin thermography usually relies on infrared imaging to detect and analyze variations in skin temperature, which can indicate potential health issues. Liquid crystals are commonly used in temperature sensors, display technologies (such as in the dial of analog watches), and can be employed in electrical circuits to find potential failure points.

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21. An organic compound C2H4O, has two functional isomers A and B. Isomer A changes blue litmus into red and B has fruity smell.
a Give the reaction for the formation of A by using Grignard's reagent.
b) Convert the isomer A into isomerB?
c) Write a suitable test reaction to distinguish A frommethanoic acid.
(2)
(1)
d) Arrange the following in the decreasing order of their acidic strength and give reason for your
answer
CH;COOH, CICH,COOH, FCH,COOH, C.H;COOH
(2)
e) Identify A and B of the following reactions.
(2)

Answers

a)The reaction for the formation of A by using Grignard's reagent.

[tex]CH_3MgBr + HCHO (formaldehyde) - > CH_3CHOH (isomer A)[/tex]

b)The converted  isomer A into isomer

[tex]BCH_3CHOH (isomer A) - > H_2SO_4, heat - > CH_3COCH_3 (isomer B)[/tex]

c)A suitable test reaction can be the reaction with sodium bicarbonate [tex](NaHCO_3) is HCOOH + NaHCO3 - > CO_2 + H_2O + NaCO_3[/tex]

[tex]d)CH_3COOH > ClCH_2COOH > FCH_2COOH > CH_3COOH[/tex]

e)Without the specific reactions or compounds mentioned, it is not possible to identify isomer A and isomer B.

a) To form isomer A using Grignard's reagent, we can start with an appropriate Grignard reagent, such as methylmagnesium bromide (CH3MgBr). The reaction can be represented as follows:

[tex]CH_3MgBr + HCHO (formaldehyde) - > CH_3CHOH (isomer A)[/tex]

b) To convert isomer A into isomer B, a dehydration reaction can be performed. For example:

[tex]CH_3CHOH (isomer A) - > H_2SO_4, heat - > CH_3COCH_3 (isomer B)[/tex]

c) To distinguish isomer A from methanoic acid (HCOOH), a suitable test reaction can be the reaction with sodium bicarbonate ([tex]NaHCO_3[/tex]). Methanoic acid, being a carboxylic acid, will react with sodium bicarbonate to produce carbon dioxide (CO2) gas:

[tex]HCOOH + NaHCO_3 - > CO_2 + H_2O + NaCO_3[/tex]

Isomer A, which is an alcohol, will not react with sodium bicarbonate and will not produce carbon dioxide gas.

d) The decreasing order of acidic strength among the given compounds is as follows:

[tex]d)CH_3COOH > ClCH_2COOH > FCH_2COOH > CH_3COOH[/tex]

The reason for this order is the presence of electron-withdrawing groups (such as halogens) in the carboxylic acid compounds. The more electronegative the halogen, the more it can withdraw electron density from the carboxylic acid functional group, making it more acidic.

e) Without the specific reactions or compounds mentioned, it is not possible to identify isomer A and isomer B based on the given information. Further details or reactions are needed to determine the specific compounds involved.

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HF+H2o reacts to form ??

Answers

Answer:

Explanation:

HF + H2O reacts to form H3O+ (hydronium ion) and F- (fluoride ion).

An atom X is 9 times heavier than 1/12 the mass of a carbon-12 atom. What is the relative atomic mass of atom X ?​

Answers

The relative atomic mass of atom X is 9.

The relative atomic mass of an element is the average mass of its atoms relative to 1/12th the mass of a carbon-12 atom.

Given that atom X is 9 times heavier than 1/12th the mass of a carbon-12 atom, we can calculate the relative atomic mass of X as follows:

Relative atomic mass of X = (9 × 1/12) × relative atomic mass of carbon-12

The relative atomic mass of carbon-12 is defined as exactly 12. Therefore, we have:

Relative atomic mass of X = (9 × 1/12) × 12

= 9

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