User:Melissa Novy/Notebook/CHEM-572/2013/02/20
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==Objectives== | ==Objectives== | ||
* Calculate the amount of AgNO<sub>3</sub> to add to LB media solutions for desired final [Ag<sup>+</sup>]. | * Calculate the amount of AgNO<sub>3</sub> to add to LB media solutions for desired final [Ag<sup>+</sup>]. | ||
| - | |||
* Remove PLA films, made on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/19|2013/02/19]], from glass molds. | * Remove PLA films, made on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/19|2013/02/19]], from glass molds. | ||
* Soak [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/19|PLA films]] in pure H<sub>2</sub>O to test for Ag<sup>+</sup> leaching with a silver ion selective electrode. | * Soak [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/19|PLA films]] in pure H<sub>2</sub>O to test for Ag<sup>+</sup> leaching with a silver ion selective electrode. | ||
| + | * Run X-ray on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/12|100Ag-LMT]]. | ||
| + | * Harvest DH5α-T1 cells for Ag<sup>+</sup> cell growth inhibition studies. | ||
| + | |||
| + | ==DH5α-T1 Cell Harvesting== | ||
| + | * Five cell starter cultures, made on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/19|2013/02/19]] were obtained and their absorbance at 600 nm was recorded. | ||
| + | * Please refer to [[User:Keyun_Wang/Notebook/Experimental_Biological_Chemistry_I/2013/02/20|Keyun Wang's entry]] for the absorbance data and the protocol to pellet the cells. | ||
| + | |||
| + | ==X-Ray Diffraction on 100Ag-LMT== | ||
| + | * The protocol from [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/05|2013/02/05]] was used. | ||
| + | <br> | ||
| + | |||
| + | [[Image:100AgLMT.JPG]] | ||
| + | <br> | ||
| + | |||
| + | * Peaks at values of 2θ were observed as follows: 19°, 21°, and 35°. These peaks correspond to d-spacing values of 4.491 Å, 4.277 Å, and 2.547 Å. When compared to the [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/06|XRD spectrum]] of Laponite, there was a decrease in the d-spacing from 4.544 nm in Laponite to 4.491 nm in 100AgLMT. According to [[http://www.ncbi.nlm.nih.gov/pubmed/21674015| literature]], this decrease in d-spacing indicates that Ag<sup>+</sup> was successfully exchanged into the clay galleries, as the structure of the clay has changed. Note that the peak at 21° may be attributed to background noise. | ||
| + | * The peak at around 35° represents a d-spacing of 2.547, similar to the same peak in the Laponite XRD spectrum that displays a d-spacing of 2.550. The similarities between these peaks indicate that the peak at 35° is due to the structure of Laponite. | ||
==Calculations== | ==Calculations== | ||
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'''V<sub>1</sub> = 0.005 mL of 0.1 M AgNO<sub>3</sub>''' | '''V<sub>1</sub> = 0.005 mL of 0.1 M AgNO<sub>3</sub>''' | ||
| - | * AgNO<sub>3</sub> solutions made on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/05|2013/02/05]] and [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/13|2013/02/13]] | + | * AgNO<sub>3</sub> solutions made on [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/05|2013/02/05]] and [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/13|2013/02/13]] will be added to the LB media solutions in the following amounts: |
{| {{table}} | {| {{table}} | ||
| align="center" style="background:#f0f0f0;"|'''Final [Ag<sup>+</sup>]''' | | align="center" style="background:#f0f0f0;"|'''Final [Ag<sup>+</sup>]''' | ||
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|} | |} | ||
| - | * Note that for each volume of AgNO<sub>3</sub> added to the LB media, the same volume of LB media | + | * Note that for each volume of AgNO<sub>3</sub> added to the LB media, the same volume of LB media will first be removed from the flask to maintain the final concentration of Ag<sup>+</sup>. |
| + | |||
| + | ==ISE Study of PLA2002D + 5 wt% 100Ag-LMT== | ||
| + | * Calculations | ||
| + | ** To determine maximum [Ag<sup>+</sup>] possible, assume that all Ag<sup>+</sup> leaches out of the film. | ||
| + | ** The solution contained 50 mL pure H<sub>2</sub>O and 1 mL [[User:Melissa_Novy/Notebook/CHEM-572/2013/02/12|ionic strength adjuster]]. The recommended ratio of solution to ionic strength adjuster is 50 mL to 1 mL. Then, 0.50 g of film was added to the solution. | ||
| + | |||
| + | '''(4.47 × 10<sup>-8</sup> mol Ag<sup>+</sup>) ÷ 0.051 L = 8.76 × 10<sup>-7</sup> M or 0.876 μM''' | ||
| + | <br> | ||
| + | |||
| + | * Protocol | ||
| + | *# Pour 50 mL pure H<sub>2</sub>O into a clean, dry 250-mL Erlenmeyer flask and add 1 mL of 5 M KNO<sub>3</sub>. | ||
| + | *# Measure the conductivity of the solution with the ISE. | ||
| + | *# Place a single 0.5 g piece of film into the flask, swirl, and measure the conductivity. | ||
| + | *# Wait 30 min, then measure the conductivity again. | ||
| + | *# Repeat the above step 5 more times. | ||
| + | <br> | ||
| + | |||
| + | {| {{table}} | ||
| + | | align="center" style="background:#f0f0f0;"|'''Time [min]''' | ||
| + | | align="center" style="background:#f0f0f0;"|'''Conductivity [mV]''' | ||
| + | | align="center" style="background:#f0f0f0;"|'''[Ag+] [M]''' | ||
| + | | align="center" style="background:#f0f0f0;"|'''mol Ag+ [μmol]''' | ||
| + | |- | ||
| + | | 0||384.9||0.000204407||10.42474353 | ||
| + | |- | ||
| + | | 30||379.9||0.000163526||8.339821664 | ||
| + | |- | ||
| + | | 60||372.5||0.000117534||5.994210823 | ||
| + | |- | ||
| + | | 90||367.2||9.27767E-05||4.731609351 | ||
| + | |- | ||
| + | | 120||366.8||9.11352E-05||4.647893756 | ||
| + | |} | ||
Revision as of 21:52, 18 March 2013
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Objectives
DH5α-T1 Cell Harvesting
X-Ray Diffraction on 100Ag-LMT
Calculations
1 μM Ag+ in 50 mL of LB media (0.0105 M Ag+) × V1 = (1×10-6 M) × (50 mL) V1 = 0.00476 mL of 0.0105 M AgNO3 10 μM Ag+ in 50 mL of LB media (0.1 M Ag+) × V1 = (10×10-6 M) × (50 mL) V1 = 0.005 mL of 0.1 M AgNO3
ISE Study of PLA2002D + 5 wt% 100Ag-LMT
(4.47 × 10-8 mol Ag+) ÷ 0.051 L = 8.76 × 10-7 M or 0.876 μM
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