Biology HW
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Learning Goals
• Measure small volumes accurately using micropipettes • Perform dilution calculations • Use a spectrophotometer to get absorbance values for solutions • Create standard curves by hand and with Excel • Quantify target molecules with a standard curve • Accurately and completely describe the methods you choose in scientific journal style
By the end of lab today, you will be able to:
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PRACTICING LAB SKILLS-JUST DO IT! May 30
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Learning Goals
• Measure small volumes accurately using micropipettes • Perform dilution calculations • Use a spectrophotometer to get absorbance values for solutions • Create standard curves by hand and with Excel • Quantify target molecules with a standard curve • Accurately and completely describe the methods you choose in scientific journal style
By the end of lab today, you will be able to:
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Light Source
Entrance slit
Dispersion Device
Exit slit
Cuvette with sample
Detector
Understanding the Spectrophotometer (Turn on your spec now.)
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If you pass a beam of orange-red (625 nm) light through each sample, which would have the LOWEST absorption?
A B C D
Hint: Remember, if something looks green, that means it REFLECTS green and ABSORBS everything else.
From left to right, cuvettes contain increasing concentrations of green dye.
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Getting comfortable w/ concentrations
1. Which grid has the highest concentration of dots?
2. What are the concentrations of the grids?
3. On Grid A, which box (small or large) has the highest concentration of dots?
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Getting comfortable w/dilutions
= 0.9 ml of water
= 0.1 ml
Your new solution is ____ as concentrated as the original solution.
Your new solution is ____ as dilute as the original solution.
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Getting comfortable w/dilutions • Turn to the “Making Dilutions” section (pg. 24) in your manual and answer the
questions. Use the formula C1V1=C2V2 to help.
• Hint: You can use the formula C1V1 = C2V2 to solve this problem. • I) Your original solution had a concentration (C1) ____ g/L. • II) Your new solution has a concentration (C2) of ____ g/L in a volume of ____L (V2). • III) You will need to add ____ L (V1) of your original stock solution plus _____ L of water to make 100 ml of
the new solution.
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y = 0.2755x + 0.0562 R² = 0.9977
0
0.5
1
1.5
2
2.5
0 1 2 3 4 5 6 7 8
M ea
n Ab
so rb
an ce
a t 6
25 nm
Concentration of Fast Green (ug/ml)
Standard Curve
Standard Curves • Absorbance values increase with increasing concentrations of dye.
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Standard Curves • Today, you will be making a standard curve using methylene blue dye.
• You will need to mix the correct amounts of water and stock solution to create the concentrations needed for your standard curve.
• Fill in the table on page 25 of your lab manual. • Use can the formula C1V1=C2V2.
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How to use micropipettes
Link to video
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Setting Micropipette Volumes
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Follow the directions in your manual to complete the Micropipetting Practice Activity
Remember:
• Adjust the volume of the micropipette using the volume adjustment knob, not the plunger button
• Depress the plunger button to the first stop when aspiring liquids-not the second
• Submerge the disposable tip just below the surface of the liquid when aspirating
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Standard Curves • Set up tubes for you standard curve and measure the absorbance values
using the instructions starting on pg. 25 of the lab manual.
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“Blanking” a Spectrophotometer
• Why is a “blank” used with a spectrophotometer?
• A blank is used to eliminate background absorbance from your sample caused by the cuvette and your reagents.
• What should be used as a “blank”?
• A blank should contain everything that you have have in your sample except what you are measuring.
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Estimating Unknown Concentrations • Measure absorbance values for “unknowns”
• Use your hand-sketched standard curve (p. 27) to estimate the concentration.
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Compare the curves. What could have gone wrong for student 2?
0
1
2
3
4
5
6
0 1 2 3 4 5 6
A bs
or be
nc e
60 0
nm
concentration (mg/mL)
0
1
2
3
4
5
6
7
0 1 2 3 4 5 6
A bs
or be
nc e
60 0
nm
concentration (mg/mL)
Standard curve from Student 1 Standard curve from Student 2
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Calculating Unknown Concentrations • Plot your standard curve in Excel
• Instructions are found in Appendix C of your lab manual.
• Use the equation of the line to calculate the concentrations of your unknowns. • Recall: y = mx + b
• y = absorbance value from spectrophotometer • m = the slope of the line • x = concentration of your unknown • b = y-intercept
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CLEAN UP!! • Dispose of solutions in the appropriate waste containers.
• Wash tubes thoroughly with water and place the tubes upside down in the rack to dry.
• Dispose of used tips, tubes, or kimwipes in the trash.
• Wipe down benches.
• Wash hands.
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SpeakWrite Approach
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Writing an Introduction
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Writing an Introduction
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Writing an Introduction
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Using Scientific Literature Part B-Introduction • Find a primary scientific article to be used as a source of background
information for your Biofuels Introduction • All groupmates should use a different primary article • Paraphrase the article
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The Eberly Writing Studio • Consider having someone read it over who is not in the
class
• The Eberly Writing Studio
• Dial 304-293-5788 to schedule an appointment or stop by G02 Colson Hall to see if a tutor is available.
• Appointments can also be made online • http://speakwrite.wvu.edu/writing-studio
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