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Draft Final Program · 245th ACS National Meeting, New Orleans, LA ...

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<strong>Draft</strong> <strong>Final</strong> <strong>Program</strong> <strong>·</strong> <strong>245th</strong> <strong>ACS</strong> <strong>National</strong> <strong>Meeting</strong>, <strong>New</strong> <strong>Orleans</strong>, <strong>LA</strong> <strong>·</strong> Ca... http://abstracts.acs.org/chem/245nm/mmadmin/index.php?content_name=...<br />

Robinson<br />

1:30 729. Electrochemical and structural analysis of cathode catalysts and electrodes for fuel cells. P. J. Kenis<br />

2:00 730. Opportunity for reducing solid oxide fuel cell operating temperatures by nanothin film technologies. P. Su<br />

2:25 731. In situ XAFS characterization of polymer electrolyte fuel cells under operating conditions. S. Nagamatsu, S.<br />

Takao, K. Nagasawa, G. Samjeske, T. Arai, M. Yamamoto, H. Oyanagi, O. Sekizawa, T. Uruga, M. Tada, Y. Iwasawa<br />

2:45 732. Assessing the effects of crowding, pore size, and interactions on electro-osmotic drag coefficients. L. C.<br />

Jacobson, X. Ren, V. Molinero<br />

3:05 Intermission.<br />

3:15 733. Role of micromorphology and interfacial mismatch in the design of heterogeneous functional materials for fuel<br />

cell applications. K. Reifsnider, W. Chiu, Q. Liu, F. Rabbi<br />

3:45 734. GDL modeling and validation for improved PEM fuel cell performance. J. Hinebaugh, J. Lee, J. Yablecki, A.<br />

Bazylak<br />

4:15 735. Understanding water uptake and transport in polymer electrolyte membrane of fuel cells using X-ray<br />

microtomography. G. Hwang, D. Y. Parkinson, A. Kusoglu, A. A. MacDowell, A. Z. Weber<br />

4:35 736. Performance prediction and optimization of fuel cells using ANFIS model and DE evolution. I. Noshadi, B.<br />

Kanjilal, P. Babamohammadi, R. Parnas<br />

4:55 737. Multiscale first-principles modeling of three-phase system of polymer electrolyte membrane fuel cell. G. F.<br />

Brunello, J. Choi, D. B. Harvey, S. Jang<br />

Morial Convention Center<br />

235<br />

Advances in Batteries<br />

Lithium Ion Battery Anodes and Electrolytes<br />

S. Meng, Organizer<br />

B. Landi, Organizer, Presiding<br />

1:00 Introductory Remarks.<br />

Section J<br />

1:05 738. Silicon nanowire core aluminum shell coaxial nanocomposites for lithium ion battery anodes grown with and<br />

without a TiN interlayer. D. Mitlin, K. Peter, E. Memarzadeh<br />

1:35 739. Porous structured silicon for lithium-ion battery anode. C. Zhou, M. Ge, J. Rong, X. Fang, A. Zhang<br />

2:05 740. Pre-lithiation of silicon-carbon nanotube anodes using stabilized lithium metal powder. M. W. Forney, R. A.<br />

DiLeo, A. Raisanen, M. J. Ganter, J. Staub, R. E. Rogers, B. J. Landi<br />

2:25 741. Nanodiamond-derived carbon nano-onions as negative electrode materials for lithium-ion batteries. M. K.<br />

Sreeramoju, J. P. Selegue, Q. Zhang, Y. Cheng<br />

2:45 742. Lithiation behavior of silicon based alloys and composites: A first principles study. C. Chou, G. S. Hwang<br />

3:05 Intermission.<br />

3:20 743. Next generation polymer nanocomposite electrolytes for lithium ion batteries. H. Ardebili<br />

3:50 744. Chemically induced stresses in Li ion battery electrodes. B. W. Sheldon, A. Tokranov, A. Mukhopadhyay, A.<br />

Kessman, D. Liu, P. Lu, X. Xiao<br />

4:20 745. Yolk-shell design for stabilized and scalable Li-ion battery silicon anodes. N. Liu, H. Wu, M. T. McDowell, C.<br />

Wang, Y. Cui<br />

53 of 61 1/27/2013 5:06 PM

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