
PDF Publication Title:
Text from PDF Page: 263
190. R. Rozada, J. I. Paredes, S. Villar-Rodil, A. Martínez-Alonso and J. M. Tascón, Nano Research, 2013, 6, 216-233. 191. Y. Zhang, D. Li, X. Tan, B. Zhang, X. Ruan, H. Liu, C. Pan, L. Liao, T. Zhai and Y. Bando, Carbon, 2013, 54, 143-148. 192. R. Rozada, J. I. Paredes, M. J. Lopez, S. Villar-Rodil, I. Cabria, J. A. Alonso, A. Martinez-Alonso and J. M. D. Tascon, Nanoscale, 2015, 7, 2374-2390. 193. D. A. Dikin, S. Stankovich, E. J. Zimney, R. D. Piner, G. H. B. Dommett, G. Evmenenko, S. T. Nguyen and R. S. Ruoff, Nature, 2007, 448, 457-460. 194. J. W. Suk, R. D. Piner, J. An and R. S. Ruoff, ACS Nano, 2010, 4, 6557-6564. 195. C. Gómez-Navarro, M. Burghard and K. Kern, Nano letters, 2008, 8, 2045-2049. 196. J. T. Paci, T. Belytschko and G. C. Schatz, The Journal of Physical Chemistry C, 2007, 111, 18099-18111. 197. K. P. Loh, Q. Bao, G. Eda and M. Chhowalla, Nat Chem, 2010, 2, 1015-1024. 198. L. Feng and Z. Liu, Nanomedicine, 2011, 6, 317-324. 199. Y. Cui, S. N. Kim, R. R. Naik and M. C. McAlpine, Accounts of Chemical Research, 2012, 45, 696-704. 200. C. Li, J. Adamcik and R. Mezzenga, Nat Nano, 2012, 7, 421-427. 201. K. V. Krishna, C. Ménard-Moyon, S. Verma and A. Bianco, Nanomedicine, 2013, 8, 1669-1688. 202. K. Kostarelos and K. S. Novoselov, Nat Nano, 2014, 9, 744-745. 203. V. C. Sanchez, A. Jachak, R. H. Hurt and A. B. Kane, Chemical Research in Toxicology, 2012, 25, 15-34. 204. C. Bussy, H. Ali-Boucetta and K. Kostarelos, Accounts of Chemical Research, 2013, 46, 692-701. 205. A. M. Jastrzębska, P. Kurtycz and A. R. Olszyna, Journal of Nanoparticle Research, 2012, 14, 1320. 206. A. B. Seabra, A. J. Paula, R. de Lima, O. L. Alves and N. Durán, Chemical Research in Toxicology, 2014, 27, 159-168. 207. C. Bussy, D. Jasim, N. Lozano, D. Terry and K. Kostarelos, Nanoscale, 2015, 7, 6432- 6435. 208. Y. Hu, F. Li, D. Han and L. Niu, Biocompatible Graphene for Bioanalytical Applications, Springer, 2014. 209. Z. Liu, J. T. Robinson, X. Sun and H. Dai, Journal of the American Chemical Society, 2008, 130, 10876-10877. 210. X. Sun, Z. Liu, K. Welsher, J. T. Robinson, A. Goodwin, S. Zaric and H. Dai, Nano Research, 2008, 1, 203-212. 211. K. Yang, S. Zhang, G. Zhang, X. Sun, S.-T. Lee and Z. Liu, Nano letters, 2010, 10, 3318-3323. 212. K. Yang, J. Wan, S. Zhang, Y. Zhang, S.-T. Lee and Z. Liu, ACS Nano, 2011, 5, 516- 522. 213. S. Zhang, K. Yang, L. Feng and Z. Liu, Carbon, 2011, 49, 4040-4049. 214. Y. Li, Y. Liu, Y. Fu, T. Wei, L. Le Guyader, G. Gao, R.-S. Liu, Y.-Z. Chang and C. Chen, Biomaterials, 2012, 33, 402-411. 215. M. C. Duch, G. R. S. Budinger, Y. T. Liang, S. Soberanes, D. Urich, S. E. Chiarella, L. A. Campochiaro, A. Gonzalez, N. S. Chandel, M. C. Hersam and G. M. Mutlu, Nano letters, 2011, 11, 5201-5207. 216. L. Feng, S. Zhang and Z. Liu, Nanoscale, 2011, 3, 1252-1257. References 263PDF Image | PRODUCTION AND APPLICATIONS OF GRAPHENE AND ITS COMPOSITES
PDF Search Title:
PRODUCTION AND APPLICATIONS OF GRAPHENE AND ITS COMPOSITESOriginal File Name Searched:
graphene-production-applications.PDFDIY PDF Search: Google It | Yahoo | Bing
Salgenx Redox Flow Battery Technology: Power up your energy storage game with Salgenx Salt Water Battery. With its advanced technology, the flow battery provides reliable, scalable, and sustainable energy storage for utility-scale projects. Upgrade to a Salgenx flow battery today and take control of your energy future.
| CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP |