Study Guide with Student Solutions Manual for Seager/Slabaugh/Hansen's Chemistry for Today: General, Organic, and Biochemistry, 9th Edition
9th Edition
ISBN: 9781305968608
Author: Spencer L. Seager, Michael R. Slabaugh, Maren S. Hansen
Publisher: Cengage Learning
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Chapter 11, Problem 11.80E
Interpretation Introduction
Interpretation:
Among the given compounds, the organic compound is to be identified.
Concept Introduction:
An organic compound consists of carbon and hydrogen. They can be classified as natural or synthetic compounds. Organic compounds also consist of heteroatoms like sulphur, oxygen, and nitrogen. The oxides of carbon like carbon dioxide, carbon monoxide are the examples of inorganic compounds.
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Learning Goal:
This question reviews the format for writing an element's written symbol. Recall that written symbols have a particular format. Written symbols use a form like this:
35 Cl
17
In this form the mass number, 35, is a stacked superscript. The atomic number, 17, is a stacked subscript. "CI" is the chemical symbol for the element chlorine. A general way to show this form is:
It is also correct to write symbols by leaving off the atomic number, as in the following form:
atomic number
mass number Symbol
35 Cl or
mass number Symbol
This is because if you write the element symbol, such as Cl, you know the atomic number is 17 from that symbol. Remember that the atomic number, or number of protons in the nucleus, is what defines the element. Thus, if 17 protons
are in the nucleus, the element can only be chlorine. Sometimes you will only see 35 C1, where the atomic number is not written.
Watch this video to review the format for written symbols.
In the following table each column…
need help please and thanks dont understand only need help with C-F
Learning Goal:
As discussed during the lecture, the enzyme HIV-1 reverse transcriptae (HIV-RT) plays a significant role for the HIV virus and is an important drug target. Assume a concentration [E] of 2.00 µM (i.e. 2.00 x 10-6 mol/l) for HIV-RT. Two potential drug molecules, D1 and D2, were identified, which form stable complexes with the HIV-RT.
The dissociation constant of the complex ED1 formed by HIV-RT and the drug D1 is 1.00 nM (i.e. 1.00 x 10-9). The dissociation constant of the complex ED2 formed by HIV-RT and the drug D2 is 100 nM (i.e. 1.00 x 10-7).
Part A - Difference in binding free eenergies
Compute the difference in binding free energy (at a physiological temperature T=310 K) for the complexes. Provide the difference as a positive numerical expression with three significant figures in kJ/mol.
The margin of error is 2%.
Part B - Compare difference in free energy to the thermal…
need help please and thanks dont understand only need help with C-F
Learning Goal:
As discussed during the lecture, the enzyme HIV-1 reverse transcriptae (HIV-RT) plays a significant role for the HIV virus and is an important drug target. Assume a concentration [E] of 2.00 µM (i.e. 2.00 x 10-6 mol/l) for HIV-RT. Two potential drug molecules, D1 and D2, were identified, which form stable complexes with the HIV-RT.
The dissociation constant of the complex ED1 formed by HIV-RT and the drug D1 is 1.00 nM (i.e. 1.00 x 10-9). The dissociation constant of the complex ED2 formed by HIV-RT and the drug D2 is 100 nM (i.e. 1.00 x 10-7).
Part A - Difference in binding free eenergies
Compute the difference in binding free energy (at a physiological temperature T=310 K) for the complexes. Provide the difference as a positive numerical expression with three significant figures in kJ/mol.
The margin of error is 2%.
Part B - Compare difference in free energy to the thermal…
Chapter 11 Solutions
Study Guide with Student Solutions Manual for Seager/Slabaugh/Hansen's Chemistry for Today: General, Organic, and Biochemistry, 9th Edition
Ch. 11 - Prob. 11.1ECh. 11 - Prob. 11.2ECh. 11 - Prob. 11.3ECh. 11 - Prob. 11.4ECh. 11 - Prob. 11.5ECh. 11 - Prob. 11.6ECh. 11 - Prob. 11.7ECh. 11 - Prob. 11.8ECh. 11 - Prob. 11.9ECh. 11 - Prob. 11.10E
Ch. 11 - Prob. 11.11ECh. 11 - Prob. 11.12ECh. 11 - Prob. 11.13ECh. 11 - Prob. 11.14ECh. 11 - What molecular geometry exists when a central...Ch. 11 - Compare the shapes of unhybridized p and...Ch. 11 - Use Example 11.1 and Tables 11.2 and 11.6 to...Ch. 11 - Prob. 11.18ECh. 11 - Prob. 11.19ECh. 11 - Prob. 11.20ECh. 11 - Prob. 11.21ECh. 11 - Prob. 11.22ECh. 11 - Prob. 11.23ECh. 11 - Write a condensed structural formula for the...Ch. 11 - Write a condensed structural formula for the...Ch. 11 - Write an expanded structural formula for the...Ch. 11 - Prob. 11.27ECh. 11 - Classify each of the following compounds as a...Ch. 11 - Why are different conformations of an alkane not...Ch. 11 - Which of the following pairs represent structural...Ch. 11 - Prob. 11.31ECh. 11 - Prob. 11.32ECh. 11 - Identify the following alkyl groups: a. b....Ch. 11 - Prob. 11.34ECh. 11 - Prob. 11.35ECh. 11 - Draw a condensed structural formula for each of...Ch. 11 - Prob. 11.37ECh. 11 - Prob. 11.38ECh. 11 - Prob. 11.39ECh. 11 - Prob. 11.40ECh. 11 - The following names are incorrect, according to...Ch. 11 - The following names are incorrect, according to...Ch. 11 - Prob. 11.43ECh. 11 - Write the correct IUPAC name for each of the...Ch. 11 - Write the correct IUPAC name for each of the...Ch. 11 - Draw the structural formulas corresponding to each...Ch. 11 - Prob. 11.47ECh. 11 - Which of the following pairs of cycloalkanes...Ch. 11 - Prob. 11.49ECh. 11 - Prob. 11.50ECh. 11 - Prob. 11.51ECh. 11 - Which of the following cycloalkanes could show...Ch. 11 - Prob. 11.53ECh. 11 - Using the prefix cis- or trans-, name each of the...Ch. 11 - Prob. 11.55ECh. 11 - The compound decane is a straight-chain alkane....Ch. 11 - Explain why alkanes of low molecular weight have...Ch. 11 - Suppose you have a sample of 2-methylhexane and a...Ch. 11 - Identify circle the alkanelike portions of the...Ch. 11 - Prob. 11.60ECh. 11 - Prob. 11.61ECh. 11 - Write a balanced equation for the incomplete...Ch. 11 - Prob. 11.63ECh. 11 - Prob. 11.64ECh. 11 - Prob. 11.65ECh. 11 - Prob. 11.66ECh. 11 - Prob. 11.67ECh. 11 - Prob. 11.68ECh. 11 - Would you expect a molecule of urea produced in...Ch. 11 - Prob. 11.70ECh. 11 - Prob. 11.71ECh. 11 - Prob. 11.72ECh. 11 - Prob. 11.73ECh. 11 - Prob. 11.74ECh. 11 - Prob. 11.75ECh. 11 - A semi-truck loaded with cyclohexane overturns...Ch. 11 - Prob. 11.77ECh. 11 - Oil spills along coastal shores can be disastrous...Ch. 11 - Prob. 11.79ECh. 11 - Prob. 11.80ECh. 11 - Use the generic formula for alkanes (CnH2n+2) to...Ch. 11 - Prob. 11.82ECh. 11 - Which of the following is an example of an alkane?...Ch. 11 - Prob. 11.84ECh. 11 - Prob. 11.85ECh. 11 - Prob. 11.86ECh. 11 - The deadly property of carbon monoxide, if...
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- Please correct answer and don't used hand raitingarrow_forwardneed help please and thanks dont understand a-b Learning Goal: As discussed during the lecture, the enzyme HIV-1 reverse transcriptae (HIV-RT) plays a significant role for the HIV virus and is an important drug target. Assume a concentration [E] of 2.00 µM (i.e. 2.00 x 10-6 mol/l) for HIV-RT. Two potential drug molecules, D1 and D2, were identified, which form stable complexes with the HIV-RT. The dissociation constant of the complex ED1 formed by HIV-RT and the drug D1 is 1.00 nM (i.e. 1.00 x 10-9). The dissociation constant of the complex ED2 formed by HIV-RT and the drug D2 is 100 nM (i.e. 1.00 x 10-7). Part A - Difference in binding free eenergies Compute the difference in binding free energy (at a physiological temperature T=310 K) for the complexes. Provide the difference as a positive numerical expression with three significant figures in kJ/mol. The margin of error is 2%. Part B - Compare difference in free energy to the thermal energy Divide the…arrow_forwardPlease correct answer and don't used hand raitingarrow_forward
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