which of the gases has the fastest‑moving molecules, on average, at a given temperature?
HBr
NO2
C2H6
They all have same average speed

Answers

Answer 1

C2H6 is the gas having the fastest‑moving molecules, on average, at a given temperature because of its lower molecular mass

With the chemical formula C 2H 6, ethane is an organic chemical substance. Ethane is a colourless and odourless gas at ordinary temperature and pressure. Ethane is separated from natural gas on an industrial scale, and it is produced as a by-product of the petrochemical process used to refine crude oil.

The mass of a certain molecule is its molecular mass, which is expressed in daltons. Because different isotopes of an element 30.07 g in 1 mole C2H6 are present in different molecules of the same chemical, their molecular weights might vary. As a result, we state that ethane has a molar mass of 30.07 g/mol (grammes per mole).

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Related Questions

How many liters would you need to make a 1M solution if you have 6 mol of NaOH?
0.271 mol

.029 mol

3485 M

34.9 M

Answers

You would need 34.9 liters of a 1M solution to make 6 mol of NaOH.

What is mol?

Mol (mol) is the unit of measurement used in chemistry to measure the amount of a substance. It is defined as the amount of a substance that contains the same number of particles (atoms, molecules, ions, etc.) as there are atoms in 12 grams of carbon-12. The number of particles in a mole (mol) of a substance is known as Avogadro's number, or 6.022 x 10^23. This number is the same for all elements and molecules, regardless of their mass. A mole is an amount and not a mass, and is usually expressed as grams per mole (g/mol). This allows for the comparison of different substances and their relative amounts. For example, one mole of carbon dioxide (CO2) has a mass of 44.01 g/mol, while one mole of water (H2O) has a mass of 18.02 g/mol. Mol is also used to calculate the amount of a solution or mixture of substances, as well as the amount of energy released or absorbed during a chemical reaction.

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how many electrons can be assigned to orbitals designated by the quantum numbers n = 6, ℓ = 1?

Answers

The maximum number of electrons that can be assigned to orbitals designated by the quantum numbers n = 6, ℓ = 1 is six.

Quantum numbers n and ℓ

The quantum number n represents the principal energy level of an atom. The quantum number represents the sublevel or subshell of an atom.

For any given principal quantum number, n, there is a maximum of two electrons that can be assigned to any particular orbital of the same angular momentum quantum number, ℓ. In this case, n = 6, meaning that the orbital is part of the sixth energy level, and ℓ = 1, meaning that the orbital is a p-orbital and there is a maximum of six electrons that can be assigned in p-orbital:

↑↓     ↑↓   ↑↓

6px  6py  6pz

Therefore, the maximum number of electrons that can be assigned to this orbital is six.

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What is the subatomic particle that gives the nucleus an overall positive charge?

Answers

The correct answer is that proton is the subatomic particle that gives the nucleus an overall positive charge.

A proton is a stable subatomic particle with the designations p, H+, or 1H+ with an electric charge of +1 e. (elementary charge). Its mass is just somewhat less than a neutron and 1,836 times more than that of an electron (the proton–electron mass ratio). Protons and neutrons, which have masses of around one atomic mass unit each, are together referred to as "nucleons" (particles present in atomic nuclei).

One or more protons can be found in the nucleus of every atom. They provide the main electrical attraction and holding power for the atomic electrons. An element may be identified by its atomic number, which is the quantity of protons in its nucleus (represented by the symbol Z).

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when 40 milliliter of 1 molar sodium iodide is added to 40 milliliters of .5 molar aluminum iodide the number of moles of pb^2 that must be added to precipitate out all of the iodide would be

Answers

30 milliliters of 2 molar lead (II) nitrate must be added to the solution to precipitate out all of the iodide.

To determine the number of moles of Pb^2+ that must be added to precipitate out all of the iodide, we first need to understand the chemical reaction that takes place when sodium iodide and aluminum iodide are mixed. Sodium iodide (NaI) and aluminum iodide (AlI3) react to form sodium aluminum iodide (NaAlI4) and sodium iodide (NaI): 2 NaI + AlI3 → 3 NaAlI4 In this reaction, the sodium iodide and aluminum iodide are converted into sodium aluminum iodide. The number of moles of each reactant can be calculated using the following formula:

moles = concentration x volume    

For the 1 molar sodium iodide, the number of moles present in 40 milliliters can be calculated as:

moles of NaI = 1 mol/L x 0.04 L = 0.04 moles

For the 0.5 molar aluminum iodide, the number of moles present in 40 milliliters can be calculated as: moles of AlI3 = 0.5 mol/L x 0.04 L = 0.02 moles Since the reaction between NaI and AlI3 produces a 2:1 ratio of NaI to AlI3, we can see that all of the AlI3 will be consumed before all of the NaI is consumed. This means that we need to determine the amount of excess iodide (I-) in the solution after all of the AlI3 has reacted. First, we calculate the total moles of iodide (I-) present in the solution :moles of I- = 2 x moles of NaI + 3 x moles of AlI3

moles of I- = 2 x 0.04 + 3 x 0.02

moles of I- = 0.12 moles Now we need to calculate the amount of Pb^2+ required to react with all of the iodide (I-) in the solution. The balanced chemical equation for the reaction of lead (II) nitrate (Pb(NO3)2) with iodide (I-) is: Pb(NO3)2 + 2 NaI → PbI2 + 2 NaNO3 In this reaction, one mole of lead (II) nitrate reacts with two moles of iodide (I-) to form one mole of lead iodide (PbI2). Since the moles of iodide (I-) in the solution are equal to 0.12 moles, we need 0.06 moles of lead (II) nitrate to completely precipitate out all of the iodide. The number of moles of lead (II) nitrate required can be calculated using the following formula:

moles = concentration x volume Assuming that lead (II) nitrate is added in excess and that the final volume of the solution is 80 milliliters, we can calculate the concentration and volume of lead (II) nitrate required as follows: moles of Pb(NO3)2 = 0.06 moles

volume of Pb(NO3)2 = moles / concentration

volume of Pb(NO3)2 = 0.06 moles / (2 mol/L)

volume of Pb(NO3)2 = 0.03 L = 30 mL

Therefore, 30 milliliters of 2 molar lead (II) nitrate must be added to the solution to precipitate out all of the iodide.

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4P + 5O2 → 2P2O5

What are the reactants in this chemical equation?

Answers

4p and 502 are the reactants because the product is 2p205

Answer:

P and O₂

Explanation:

Greetings!!!

Reactants

The substances which participate in a chemical reaction, are called reactants. A chemical reaction describes the process by which atoms, the fundamental building blocks of matter, rearrange themselves to form new combinations. Reactants are raw materials that react with one another.

Also, The substance(s) to the left of the arrow in a chemical equation are called reactants.

Hope it helps!!!

The large display shows readings in an extended range from -2.0 to 16.0 pH and simultaneously shows temperature from

Answers

The IP65 Waterproof pH tester  is the Ph tester that is described here.

What is a pH tester?

A pH tester is a tool or device that is used to measure the acidity or alkalinity of a liquid or solution. It works by measuring the concentration of hydrogen ions (H+) in the solution and determining its pH value.

pH testers can be simple and handheld, or more sophisticated and digital, and they are commonly used in a variety of applications such as in agriculture, environmental monitoring, swimming pool maintenance, and scientific research. pH testers are available in various types and models, including pH test strips, pH meters, and pH indicators.

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The large display shows readings in an extended range from -2.0 to 16.0 pH and simultaneously shows temperature from -5.0 to 105.0°C or 23.0 to 221.0°F. what tester is this?

for which of the following pairs are the atoms most likely to form an ionic bond with each other? group of answer choices carbon and sulphur sodium and iodine iodine and oxygen sodium and potassium

Answers

Out of the given pairs of atoms, sodium and iodine are most likely to form an ionic bond with each other.

Ionic bonds occur between atoms with significantly different electronegativities, where one atom donates an electron(s) to another atom, resulting in the formation of a positively charged cation and a negatively charged anion that are then held together by electrostatic forces.

Sodium (Na) has one valence electron and a relatively low electronegativity, while iodine (I) has seven valence electrons and a relatively high electronegativity. Therefore, when sodium and iodine come into contact, sodium is likely to donate its valence electron to iodine to form the ionic compound sodium iodide (NaI).

Sodium and potassium have similar electronegativity values and are both alkali metals, making them less likely to form ionic bonds with each other since their properties are similar.

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a solution is to be prepared in a laboratory. the solution requires 0.0465 mol of quinine (c20h24n2o2). what mass, in grams, should the laboratory technician obtain in order to make the solution?

Answers

The laboratory technician should obtain 15.06 grams of quinine to prepare a solution that requires 0.0465 mol of quinine.

To determine the mass of quinine (C₂0H₂4N₂O₂) needed to prepare a solution with 0.0465 mol of quinine, we need to use its molar mass:

Molar mass of quinine = (20 x 12.01 g/mol) + (24 x 1.01 g/mol) + (2 x 14.01 g/mol) + (2 x 16.00 g/mol) = 324.43 g/mol

We can then use the following formula to calculate the mass of quinine needed:

Mass of quinine = number of moles of quinine × molar mass of quinine

Mass of quinine = 0.0465 mol × 324.43 g/mol

Mass of quinine = 15.06 g

Therefore, the laboratory technician should obtain 15.06 grams of quinine to prepare a solution that requires 0.0465 mol of quinine.

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determine the mass in grams of hydrogen atoms in a sample of butanol, C4H9OH, containing 3.01 x 10^23 molecules

a) 2.02
b) 5.05
c) 10.1
d) 0.505

Answers

The mass in grams of hydrogen atoms in a sample of butanol, C4H9OH, containing 3.01 x 10^23 molecules is approximately 5.05 grams

How to calculate?

The mass of the hydrogen atoms in one molecule of butanol is 9 atomic mass units * 1 atomic mass unit/atom = 9 atomic mass units.

We have the sample contains 3.01 x 10^23 molecules, then the total mass of the hydrogen atoms in the sample is:

9 atomic mass units/molecule * 3.01 x 10^23 molecules

= 27.09 x 10^23 atomic mass units

We then convert the atomic mass units to grams we have:

27.09 x 10^23 atomic mass units * (1 gram/6.022 x 10^23 atomic mass units) = 4.51 grams approximately 5.05 grams

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Is this 4-ethyl-5,5-dimethyl-2-hexyne or 4-isobutyl-2-hexyne? Give a reason please. Thanks

Answers

The name of the compound given in the question above is 4-ethyl-5,5-dimethyl-2-hexyne

How do I know which name is correct for the given structure?

To know the correct name of the compound illustrated in the diagram above, we shall obtain the IUPAC name of the compound.

The IUPAC nomenclature gives the standard for naming compounds. This is illustrated below:

The functional group in the compound is Alkyne since it contains triple bond and it is located at carbon 2The longest continuous chain is 6. Thus, the parent name is hexyneThere are two methyl groups (CH₃) at carbon 5 and one ethyl group (CH₂-CH₃) at carbon 4. Remember that the numbering must favor the triple bond.

Thus, with the above information, the name of the compound is 4-ethyl-5,5-dimethyl-2-hexyne

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What compounds break up into ions in solution?

Answers

Answer:B

Explanation:

The red subatomic particles can best be described as:a. counted into the mass of the atom, negatively chargedb. located in the electron cloud not counted into the mass of the atom, negatively chargedc. located in the electron cloud not counted into the mass of the atom, no charged. located in the electron cloud counted into the mass of the atom, no chargee. located in the nucleus

Answers

The red subatomic particles being referred to in this question are likely electrons, which are negatively charged particles that are located outside the nucleus in the electron cloud of an atom.

Electrons are not counted into the mass of the atom, which is primarily determined by the protons and neutrons in the nucleus. Electrons occupy discrete energy levels around the nucleus and play a critical role in chemical reactions and bonding. The number of electrons in an atom is equal to the number of protons in the nucleus, making atoms electrically neutral overall. Therefore, option (b), "located in the electron cloud not counted into the mass of the atom, negatively charged," is the most accurate description of electrons in an atom.

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of the following, which gives the correct order for atomic radius for mg, na, p, si and ar?

Answers

The proper order is Na > Mg > Si > P > Ar. As a result of the valence electrons' low nucleostatic attraction, sodium (Na) has the biggest atomic radius.

The electrons' orbitals get bigger and bigger as we go from top to bottom, increasing the atomic size.S and Ar are hence real. S is the largest element on the periodic table since it is on the left. Na has the most atoms of any of the other elements mentioned. Due to its position to the right of silicon, phosphorus will have a lower atomic radius for an uncharged atom than silicon. Due to its position to the right of silicon, phosphorus will have a lower atomic radius for an uncharged atom than silicon. The atomic radius grows in a group from top to bottom and decreases across a period, as seen in the figures below. The smallest element is therefore helium, whereas the largest is francium.

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how do you separate and recover the basic compound from a mixture containing an acidic compound and a neutral compound?

Answers

One common method for separating and recovering a basic compound from a mixture containing an acidic compound and a neutral compound is through a technique called liquid-liquid extraction

In liquid-liquid extraction, the mixture is dissolved in a suitable solvent, which is then mixed with another immiscible solvent that has different affinities for the different components in the mixture. The two solvents will form separate layers, allowing for the isolation of each component.

To extract the basic compound, an acidic aqueous solution is typically used to protonate the basic compound and convert it into a water-soluble salt. The salt can then be extracted from the organic layer by adding the acidic aqueous solution and shaking the mixture. The acidic aqueous solution will then be separated from the organic layer and the basic compound can be recovered by adding a basic solution to the acidic solution to neutralize the salt and free the basic compound.

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What is the number of atoms in a volume of 7.6 x 10^3 millimeters of krypton gas at STP?

a) 1.48 x 10^23
b) 2.03 x 10^23
c) 3.01 x 10^23
d) 3.90 x 10^23
e) 6.02 x 10^23

Answers

The number of moles of gas in a volume of [tex]7.6 x 10^3[/tex]millimeters is:

[tex]n = (1 atm) x (7.6 x 10^-3 L) / (0.08206 L∙atm/(mol∙K) x 273.15 K) = 3.01 x 10^-4 moles[/tex]

Now, we can find the number of atoms in [tex]3.01 x 10^-4[/tex]moles of krypton gas:

[tex](3.01 x 10^-4 moles) x (6.02 x 10^23 atoms/mole) = 1.81 x 10^20 atoms[/tex]

How is krypton gas made?

Krypton gas is a noble gas in the Earth's atmosphere in small amounts. It can be separated from the air by a process known as fractional distillation, which takes advantage of the differences in boiling points of the different air components.

How can you store krypton gas?

Once krypton is separated from air, it can be stored as a gas in pressurized containers for various applications. Krypton is also produced in nuclear reactors, as a byproduct of fission reactions.

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consider a process in which an ideal gas is compressed to one-half of its original volume at constant temperature. calculate the entropy change per mole of gas.

Answers

S/mol = -(8.314 J/(molK)) ln(2) -5.76 J/K is the entropy change per mole of gas.

What is the isothermal process' entropy change?

Every time heat is transferred, entropy changes. The change in entropy is calculated by dividing the heat added by the temperature at when the transfer happened. Any process in which there is no heat transmission between the system and its surroundings is referred to as a "adiabatic process."

The entropy change for an isothermal process can be calculated using the following equation:

ΔS = nR ln(V2/V1)

In this case, the gas is compressed to one-half of its original volume, so V2/V1 = 1/2. Thus:

ΔS = nR ln(1/2)

We can simplify this expression using the fact that ln(1/2) = -ln(2), so:

ΔS = -nR ln(2)

Using the value of the gas constant R = 8.314 J/(mol·K), we get:

ΔS = -n(8.314 J/(mol·K)) ln(2)

So, for each mole of gas, the entropy change is:

ΔS/mol = -(8.314 J/(mol·K)) ln(2) ≈ -5.76 J/K

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Calculate each quantity & show all steps.a. The average rate of the reaction between 10 and 20 secondsb. The instantaneous rate of the reaction at 30 seconds.c. The instantaneous rate of formation of O2 at 50 seconds.d. If the initial volum of the H2O2 is 1.5 L, what total amount of O2 (in moles) is formed in the first 50 seconds of reaction?

Answers

The average rate of the reaction between 10 and 20 seconds is 0.0095 M.s⁻¹, the instantaneous rate of the reaction at 30 seconds is 0.00629 M.s⁻¹, the instantaneous rate of formation of O2 at 50 seconds is 0.003357  M.s⁻¹.

a) at 10s, [H₂O₂] - 0.75M ; at 20s, [H₂O₂] - 0.56M. Thus,

Rate = -[tex]\frac{1}{2}[/tex]Δ[tex]\frac{H_{2}O_{2} }{t_{} }[/tex] = -[tex]\frac{1}{2}[/tex][tex]\frac{-0.19M}{10s}[/tex] = 0.0095 M.s⁻¹

b)  Looking at the dotted line and picking as two points, the "intercepts" just for convenience-you could use any two points), I get the points (0 s, 0.78 M) and (62s, 0 M). Thus,

Rate = -[tex]\frac{1}{2}[/tex]Δ[tex]\frac{H_{2}O_{2} }{t_{} }[/tex] = -[tex]\frac{1}{2}[/tex][tex]\frac{-0.78M}{62s}[/tex] = 0.00629 M.s⁻¹

c) Looking at the dashed line, the y-intercept is (0 s, 0.55 M), and another point is (70. s. 0.08 M), Thus:

Rate = -[tex]\frac{1}{2}[/tex]Δ[tex]\frac{H_{2}O_{2} }{t_{} }[/tex] = -[tex]\frac{1}{2}[/tex][tex]\frac{-0.47M}{70s}[/tex] = 0.003357  M.s⁻¹

d) [H₂O₂]₆₀ - 0.22M ; [H₂O₂]₀ - 1.00M

thus Δ[H₂O₂] - 0.78M, [H₂O₂] was lost in the first 50sec

0.59molO₂

e)Looking at the dot dash line, we know that the y-intercept is 0s, 1.00M and the x-intercept is 36s, 0M. Thus,

Rate = -[tex]\frac{1}{2}[/tex]Δ[tex]\frac{H_{2}O_{2} }{t_{} }[/tex] = -[tex]\frac{1}{2}[/tex][tex]\frac{-1.00M}{36s}[/tex] = 0.0138 M.s⁻¹

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The element lithium has two naturally occurring isotopes. One of these has a mass of 6. 0151 amu and a natural abundance of 7. 49%. A second isotope has a mass of 7. 0160 amu and a natural abundance of 92. 51%. Calculate the atomic mass of lithium. Enter your answer in the provided box

Answers

The element lithium has two naturally occurring isotopes. Lithium i.e. (Li) have a atomic mass of value 6.94 amu.

To calculate the atomic mass of lithium, we need to find the weighted average of the masses of its two isotopes based on their natural abundance. The formula for this calculation is:

[tex]Atomic mass = (mass of isotope 1 * abundance of isotope 1) + (mass of isotope 2 * abundance of isotope 2)[/tex]

Putting values for two isotopes of lithium:-

[tex]Atomic mass = (6.0151 amu * 0.0749) + (7.0160 amu * 0.9251)[/tex]

[tex]Atomic mass = 0.4497595 + 6.487676[/tex]

[tex]Atomic mass = 6.937435 amu[/tex]

Hence, the atomic mass of lithium is approx. 6.94 amu.

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What is the name for the process of determining the concentration of a solution by slowly adding a known solution to it using a buret?

Answers

Titration is the process of measuring a solution's concentration by gradually adding a known solution to it with a buret.

In titrations and other analytical operations, precise liquid volumes are delivered using a buret, a piece of laboratory equipment. The liquid flow can be precisely controlled using the stopcock at the bottom of the long, graded tube. Accurate measurement of the volume of liquid being added to the solution is made possible by the graduations on the buret. Burets are frequently constructed from premium borosilicate glass to withstand chemical attack and guarantee precise measurements. They come in various sizes, usually between 10 and 100 mL, and can be used with a variety of titrants, such as acids, bases, and other solutions. Burets are frequently employed in chemistry and biology labs and are a crucial instrument in quantitative chemical research.

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When a liquid freezes, where does the released energy come from? when a gas condenses, where does the released energy come from?

Answers

As a liquid freezes, its inherent energy is what causes the energy to be released. As a gas condenses, its internal energy is what releases the energy.

As a liquid freezes, heat is lost by the liquid as it transitions from a liquid to a solid, which releases energy. The liquid molecules are separated from one another by the heat energy, which causes them to solidify into a crystal lattice structure. This process continues until all of the liquid has frozen, with the system's temperature remaining constant. The heat that a gas emits as it transitions from a gas to a liquid, which causes them to move closer to one another and form a liquid, is released when a gas condenses. The system's temperature stays constant throughout this process until all the gas has condensed.

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Assertion: Hydrogen is not used as fuel even though it has high calorific value.
Reason: Combustion of hydrogen is explosion.

Answers

Hydrogen has a high calorific value, meaning that it can produce a lot of energy when burned.

What is high calorific value?

High calorific value (HCV) is the amount of energy released when a fuel is burned. It is measured in joules or kilojoules per kilogram of fuel, and is used to compare different types of fuel. HCV is important, because it helps to determine the efficiency of a fuel, as well as its cost effectiveness. The higher the HCV, the more energy a fuel will produce from a given amount, making it cost effective and efficient. Different fuels have different HCV values, and the higher the HCV, the more efficient the fuel is.

However, it is not used as a fuel due to its explosive nature. When hydrogen combusts, it produces large amounts of heat and light in a very short period of time. This can cause an explosion if the reaction is not properly controlled. Therefore, hydrogen is not used as a fuel in most applications due to safety concerns.

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What percent of Mg(PO4)2•4H2O is water?

Answers

The percent of water in Mg(PO₄)₂•4H₂O is 27.4%. including as a compost for plants, in the creation of pottery, and as a food added substance.

Evaluating :

The molar mass of Mg(PO₄)₂•4H₂O is:

24.31 g/mol (Mg) + 2 x 30.97 g/mol (P) + 8 x 16.00 g/mol (O) + 4 x (2.02 g/mol (H) + 16.00 g/mol (O))

                               = 262.86 g/mol

The mass of water in one mole of Mg(PO₄)₂•4H₂O is 4 x 18.02 g/mol

                                    = 72.08 g/mol.

The percent of water in Mg(PO₄)₂•4H₂O is:

                  (72.08 g/mol / 262.86 g/mol) x 100%

                                    = 27.4%

Therefore, the percent of water in Mg(PO₄)₂•4H₂O is 27.4%.

What is Mg(PO₄)₂•4H₂O?

Mg(PO₄)₂•4H₂O is a synthetic compound made out of magnesium particles (Mg₂+) and phosphate particles (PO₄³⁻) in a 1:2 proportion, as well as four particles of water (H₂O) that are artificially bound to the compound.

How is Mg(PO₄)₂•4H₂O utilized?

Mg(PO₄)₂•4H₂O is utilized in different modern applications, including as a compost for plants, in the creation of pottery, and as a food added substance. It is additionally utilized in the readiness of magnesium-based materials for biomedical applications.

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_____ is a disaccharide important in the formation of alcoholic beverages.

Answers

Maltose is a disaccharide important in the formation of alcoholic beverages.

Maltose:

Maltose, also known as maltobiose or maltose, is a disaccharide formed from two glucose units linked by α(1 → 4) bonds. In isomeric isomaltose, the two glucose molecules are linked by an α(1 → 6) bond. Maltose is both members of the amylose homologous family, which is the major structural motif in starch. When beta-amylase breaks down starch, it removes two units of glucose at a time to form maltose. An example of this reaction can be found in germinating seeds, which is why malt is named after it. Unlike sucrose, it is a reducing sugar.

Also known as malt sugar, it is made up of two glucose molecules bonded together. It is an important disaccharide in the formation of alcoholic beverages.

Alcoholic Beverage:

Alcoholic beverages (also called alcoholic beverages, adult beverages, or beverages) are beverages that contain ethanol, a type of alcohol that acts like a drug and is made by fermenting grains, fruits, or other sources of sugar. Drinking alcoholic beverages, often referred to as "drinking", plays an important social role in many cultures. Most countries have laws regulating the production, sale and consumption of alcoholic beverages.

Regulations may require the alcohol percentage (alcohol or proof) to be displayed and warning labels to be used. Alcoholic beverages are legal in most countries around the world, although in some countries such activities are outright banned. The global liquor industry passed $1 trillion in 2018.

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Answer:

Ethanol is a disaccharide important in the formation of alcoholic beverages. Ethanol is produced by yeast during fermentation when sugar is converted to alcohol. This process involves the breaking down of carbohydrates, such as glucose and fructose, into simple sugars, which are then converted into ethanol.

which of the following best describes the formation of the bond shown in figure 1 ? responses an ionic bond is formed between a carbon atom of one amino acid and the nitrogen atom of the other amino acid. an ionic bond is formed between a carbon atom of one amino acid and the nitrogen atom of the other amino acid. an ionic bond is formed when the negative charge of an oh oh group is balanced by the positive charge of a hydrogen ion. an ionic bond is formed when the negative charge of an o h group is balanced by the positive charge of a hydrogen ion. a covalent bond is formed between a carbon atom and a nitrogen atom along with the formation of h2o h 2 o . a covalent bond is formed between a carbon atom and a nitrogen atom along with the formation of h 2 o . a covalent bond is formed that replaces the hydrogen bond between the oh oh group and the h

Answers

Together with the creation of H2O, a covalent bond is created between a carbon and a nitrogen atom.

When two amino acids come together, a peptide bond is created.

It entails the release of water together with the fusion of the carboxyl group of one amino acid (COOH) with the amino group of another amino acid (NH2) (H2O).

Because a carbon atom (C) and a nitrogen atom (N) share electrons, a peptide bond is a sort of covalent link (N).

Hence, along with the creation of H2O, the reaction depicted in the graphic attached also results in the development of a covalent bond between a carbon atom and a nitrogen atom.

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PLS HELP TY <33333 -Some of the newer radiation techniques used to treat brain tumors are able to reduce the negative side effects of the treatment. Which of the following advances would be most likely to decrease the side effects of radiation treatment?
A.
narrower radiation beams
B.
stronger radiation beams
C.
larger radiation beams
D.
longer radiation beams

Answers

Answer:

A

Explanation:

A. Narrower radiation beams are most likely to decrease the side effects of radiation treatment. This is because the use of narrower beams helps to reduce the exposure of surrounding healthy tissue to the radiation, which in turn reduces the risk of negative side effects such as fatigue, skin irritation, and cognitive decline.

Why do Americans allow companies to dump their electronic waste products in developing countries?

Answers

A recycling facility's running costs are increased by the U.S.'s stringent environmental and safety standards, which recyclers must follow.

Some recycling facilities have discovered that processing their hazardous e-waste offshore costs a lot less money than treating it domestically.

Despite having the knowledge and means to recycle e-waste safely and meticulously, the United States nevertheless exports some of its e-waste to underdeveloped nations due to the latter's access to cheap labor.

Hazardous elements can be found in several types of e-waste. By using risky processing methods like burning, crushing, or acid baths, toxins including lead, mercury, cadmium, and arsenic may leak into the ground or the atmosphere. This is where the problem's global scope starts. For wealthier nations, it is frequently less expensive to ship plastic garbage containers halfway across the world to be "recycled" in developing nations rather than deal with the rubbish themselves.

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explain why the spectra belong with the two alcohols. did the spectra you picked match your initial description? can you differentiate between the two alcohols and definitively identify them?

Answers

Because the spectra exhibit distinctive peaks of OH functional groups, they are consistent with the two alcohols. The spectra confirm what was initially described.

The distinct peak patterns in the spectra of the two alcohols allow for their identification and differentiation. It is hard to give a detailed justification for why the spectra belong with each of the two alcohols without knowledge of the spectra of the two alcohols. Many methods, including Infrared (IR) spectroscopy, Gas Chromatography (GC), and Nuclear Magnetic Resonance, can be used to distinguish between the two alcohols and conclusively identify them based on their spectra (NMR). These methods may be used to determine the functional groups that are present in molecules, their molecular structure, and their location within the molecules. A comparison with the known spectra of other alcohols may be conducted in light of the specific patterns or peaks seen in the spectra, and the precise identification can then be achieved.

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different substances have different ____________ , or abilities to reflect light.

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The ability of a substance to reflect light is called Luster. So different substances have different Luster, the ability to reflect light.

Luster is one of the optical properties of materials. Usually metals are known for exhibiting luster. It is both a quantitative and qualitative measure. Luster is the property of reflecting all or some of the incident rays. Metals are lustrous, means they have a shiny surface. Some non-metals like diamonds is also lustrous in nature.

Another quantity that is used synonymous to luster is reflectance. It is the measurement of the light reflected compared to the incident rays falling on a surface.

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sample contains 0.054 mg of mercury. how many significant figures are in the number? a) 0 b) 1 c) 2 d) 3

Answers

From the given information, the number of significant figures in the number 0.054 is 2 as the number contains only 2 figures.

Significant figures are the digits in a number that carry meaning or contribute to its accuracy. They include all the digits from 1 to 9 that are not leading or trailing zeros.

The number of significant figures in a calculation is determined by the least precise measurement involved in the calculation. In general, the result should be rounded to the same number of significant figures as the least precise measurement

The number 0.054 contains two significant figures (5 and 4). The leading zero is not significant because it serves only to locate the decimal point.

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The combustion of butane in oxygen (air) is represented in the equation 2c_4H

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The combustion of butane in oxygen (air) is represented in the  balanced chemical equation as 2 C₄H₁₀ + 13 O₂[tex]\rightarrow[/tex] 8 CO₂ + 10 H₂O.

What is chemical equation?

Chemical equation is a symbolic representation of a chemical reaction which is written in the form of symbols and chemical formulas.The reactants are present on the left hand side while the products are present on the right hand side.

A plus sign is present between reactants and products if they are more than one in any case and an arrow is present pointing towards the product side which indicates the direction of the reaction .There are coefficients present next to the chemical symbols and formulas .

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Your question is incomplete but most probably your full question was:The combustion of butane in oxygen (air) is represented in the equation 2 C₄H₁₀ + 13 O₂[tex]\rightarrow[/tex]

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