박사

전기화학촉매 및 에너지저장 응용을 위한 탄소/금속산화물 나노복합 에어로겔

논문상세정보
' 전기화학촉매 및 에너지저장 응용을 위한 탄소/금속산화물 나노복합 에어로겔' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Nickel cobaltite
  • aerogels
  • asymmetric supercapacitor
  • electrooxidation
  • ethanol oxidation
  • 니켈
  • 슈퍼커패시터
  • 에어로겔
  • 에탄올 산화
  • 전기적 산화
  • 코발트
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
146 0

0.0%

' 전기화학촉매 및 에너지저장 응용을 위한 탄소/금속산화물 나노복합 에어로겔' 의 참고문헌

  • https://en.wikipedia.org/wiki/Proton-exchange_membrane_fuel_cell
  • http://www.murata.com/products/capacitor/edlc/techguide/principle
  • http://www.murata.com/en-us/products/emiconfun/capacitor/2015/03/24/20150324-p1
  • http://www.fuelcelltoday.com/technologies/dmfc
  • http://mypages.iit.edu/~smart/garrear/fuelcells.htm
  • http://energystoragesense.com/fuel-cells-and-hydrogen/
  • Z. X. Yang, Y. D. Xia, and R. Mokaya, J. Am. Chem. Soc., 129, 1673– 1679(2007).
  • Z. Bo, Z. Wen, H. Kim, G. Lu, K. Yu and J. Chen, Carbon, 50, 4379(2012).
  • Y. Zhu, E. Liu, Z. Luo, T. Hu, T. Liu, Z. Li, Q. Zhao, Electrochem. Acta, 118, 106–111 (2014).
  • X. Xia, Q. Hao, W. Lei, W. Wang, D. Sun X. Wang, J. Mater. Chem., 22, 16844-16850 (2012).
  • X. Wang, M. Li, Z. Chang, Y. Wang, B. Chen, L. Zhang, and Y. Wu, J. Electrochem. Soc., 162(10), A1966-A1971 (2015).
  • X. Wang, C. Lu, H. Peng, X. Zhang, Z. Wang, G. Wang, J. Power Sources, 324, 188-198 (2016).
  • X. F. Lu, D. J. Wu, R. Z. Li, Q. Li, S. H. Ye, Y. X. Tong and G. R. Li, J. Mater. Chem. A, 2, 4706 (2014).
  • W. Li, G. Joos, and J. Belanger, IEEE Trans. Ind. Electron., 57, 4, 1137– 1145 (2010).
  • W. D. Xue, H. Yin, W. J. Wang and R. Zhao, J. Electrochem. Soc., 164(2), A482-A489 (2017).
  • V. Srinivasan, J.W. Weidner, J. Electrochem. Soc., 144, L210-L213 (1997).
  • Tung-Yuan Yung, Li-Ying Huang, Tzu-Yi Chan, Kuan-Syun Wang, Ting- Yu Liu, Po-Tuan Chen, Chi-Yang Chao and Ling-Kang Liu, l. Nanoscale Res. Lett., 9, 444(2014).
  • Teressa Nathan, A. Aziz and Fazly amri Mohd, J. Solid State Chem., 12, 1003-1009(2008). 14. Venkat Srinivasan and John W. Weidner, J. Electrochem. Soc., 144, L210-L213(1997).
  • T.Y. Yung, L.Y. Huang, T.Y. Chan, K.S. Wang, T.Y. Liu, P.T. Chen, C.Y. Chao, L.K. Liu, Nanoscale Res. Lett., 9, 444-449 (2014).
  • T.Y. Kim, G. Jung, S. Yoo, K.S. Suh and R.S. Rouff, Acsnano, 7, 6899(2013).
  • T.H. Ko, S. Radhakrishnan, W.K. Choi, M.K. Seo, B.S. Kim, Mater. Lett., 166, 105–109 (2016).
  • T.H. Ko, S. Radhakrishnan, M.K. Seo, M. S. Khil, H. Y. Kim, B.S. Kim, J. Alloys. Compd., 696, 193–200 (2017).
  • T.H. Ko, K. Devarayan, M.K. Seo, H.Y. Kim, B.S. Kim, Sci. Rep., 6, 20313 (2016).
  • T. Patrick and Moseley, J. PowerSources,155,1,83–87(2006).
  • T. P. McNicholas, A. M. Wang, K. O’Neill, R. J. Anderson, N. P. Stadie, A. Kleinhammes, P. Parilla, L. Simpson, C. C. Ahn, Y. Q. Wang, Y. Wu and J. Liu, J. Phys. Chem. C, 114, 13902–13908(2010).
  • T. Nathan, A. Aziz, F.A. Mohd, J. Solid State Chem., 12, 1003-1009 (2008).
  • Silica Aerogel. Aerogel.org.
  • Seung-Gi Hwang, Seong-Hyeon Ryu, Su-Ryeon Yun, Jang Myoun Ko, Kwang Man Kim, Kwang-Sun Ryu, Mater. Chem. Phys., 130, 507– 512(2011).
  • S.Y. Shen, T.S. Zhao , J.B. Xu, Electrochim. Acta, 55, 9179–9184(2010).
  • S.S. Kistler, Nature. 127(3211): 741(1931).
  • S. Swathirajan and Youssef M. Mikhail, J. Electrochem. Soc., 138, 1321- 1326(1991).
  • S. Radhakrishnan, H.Y. Kim, B.S. Kim, J. Mater. Chem. A., 4, 12253-12262 (2016).
  • S. Patchkovskii, J. S. Tse, S. N. Yurchenko, L. Zhechkov, T. Heine and G. Seifert, Proc. Natl. Acad. Sci. U. S. A., 102, 10439– 10444(2005).
  • S. K. Bhatia and A. L. Myers, Langmuir, 22, 1688–1700(2006).
  • S. I. Orimo, Y. Nakamori, J. R. Eliseo, A. Zuttel, and C. M. Jensen, Chem. Rev., 107, 4111–4132(2007).
  • S. Devaraj, G.S. Gabriel, S.R. Gajjela, P. Balaya, Electrochem. Solid St., 15, A57–A59 (2012).
  • S. Ci, Z. Wen, Y. Qian, S. Mao, S. Cui, J. Chen, Sci. Rep., 5, 11919 (2015).
  • S. Chen, J. Zhu, X. Wu, Q. Han and X. Wang, Acsnano, 4, 2822(2010).
  • S. Boukhalfa, K. Evanoff, G. Yushin, Ener. Environ. Sci., 5, 6872–6879 (2012).
  • R.W. Pekala, J. Mater. Sci., 24 (9), 3221–3227(1989).
  • R.K. Shah, Introduction to fuel cells - http://web.iitd.ac.in/~sbasu/L5.pdf
  • R.C. Chiechi, R.W.A. Havenith, J.C. Hummelen, L.J.A. Koster and M.A. Loi, Mater. Today, 16, 281(2013).
  • R. Wang, X. Yan, Sci. Rep., 4, 3712 (2014).
  • R. W. Pekala, J. C. Farmer, C. T. Alviso, T. D. Tran, S. T. Mayer, J. M. Miller and B. Dunn, J. Non-Cryst. Solids, 225, 74–80(1998).
  • R. Shinnar, F. Citro, Technol. Soc., 29, 261(2007).
  • R. Pena, J. C. Clare, and G. M. Asher. IEE Proceedings - Electric Power Applications, 143(3),231 – 241(1996).
  • R. Kotz, M. Carlen, Electrochim. Acta, 45, 2483(2000).
  • R. Chahine and P. Benard, in Advances in Cryogenic Engineering, ed. P. Kittel, Plenum Press, New York, 43, 1257(1998).
  • Q. Wang, Z.H. Wen, J.H. Li, Adv. Funct. Mater., 16, 2141-2146 (2006).
  • Q. Cheng, J. Tang, J. Ma, H. Zhang, N. Shinya and L.C. Qin, Phys. Chem. Chem. Phys, 13, 17615(2011).
  • P. Thounthong, S. Rael, and B. Davat, IEEE Trans. Ind. Electron., 54, 6, 3225–3233(2007).
  • P. Tamilarasan, A.K. Mishra and S. Ramaprabhu, IEEE, (2011).
  • P. Simon, Y. Gogotsi, Nat. Mater., 7, 845−854 (2008).
  • P. Sharma and T.S. Bhatti, Energy Convers. Manag., 51, 2901(2010).
  • P. Karthika, N. Rajalakshmi and K.S. Dhathathreyan, Soft Nanosci. Lett., 2, 59(2012).
  • P. F. Ribeiro, B. K. Johnson, M. L. Crow, A. Arsoy, and Y. Liu, Proc. IEEE, 89, 12,1744–1756(2001).
  • Neil Spinner, William E. Mustain, Electrochim. Acta, 56, 5656–5666 (2011).
  • N. Syarif, I. Tribidasari A and W. Wibowo, Int. J. Eng. Technol. Manag. Appl. Sci., 3, 21(2012).
  • N. Padmanathan, S. Selladurai, RSC Adv., 4, 8341– 8349 (2014).
  • N. Husing and U. Schubert, Angew. Chem. Int. Ed., 37, 22-47 (1998).
  • Muhammad Mehmood Shahid, Alagarsamy Pandikumar, Amir Moradi Golsheikh, Nay Ming Huang and Hong Ngee Lim, RSC Adv., 4, 62793(2014).
  • Maksudul Hasan, Simon B Newcomb and Kafil M. Razeeb, ECS Trans. 45, 111-126(2013).
  • M.S. Halper and J. C.Ellenbogen, Mitre Nanosystems Group, (2006).
  • M.Beaudin, H.Zareipour, A.Schellenberglabe, and W.Rosehart, Ener. Sust. Develop., 14, 4, 302– 314(2010).
  • M. Gr tzel, Nature, 414, 338 (2001).
  • M. D. Stoller, S. Park, Y. Zhu, J. An and R. S. Ruoff, Nano Lett., 8(10), 3498–3502(2008).
  • L. Schlapbach and A. Zuttel, Nature, 414, 353–358(2001).
  • L. Jiang, A. Hsu, D. Chu, R. Chen, Int. J. hydrogen Ener., 35, 365–372(2010)
  • L via M. Palma, Thiago S. Almeida and Adalgisa R. de Andrade, J. Braz. Chem. Soc., 23, 555-564(2012).
  • Kouichi Takizawa, Vol. II - Electrochemistry of Fuel Cell.
  • K. Sahay, B. Dwivedi, Electr. Pow. Qual Utilis., 15, 1(2009).
  • K. S. Xia, Q. M. Gao, C. D. Wu, S. Q. Song, and M. L. Ruan, Carbon, 45, 1989–1996(2007).
  • K. Devarayan, D. Lei, H.Y. Kim, B.S. Kim, Chem. Eng. J., 273, 603–609 (2016).
  • Joelma Perez, Valdecir A. Paganin, Ermete Antolini, J. Electroanal. Chem., 654, 108–115(2011).
  • Jing Zhan, Meng Cai, Chuanfu Zhang, Chen Wang, Electrochim. Acta, 154, 70–76(2015).
  • J.S. Sivabalan, T.H. Ko, S. Radhakrishnan, C.M. Yang, H.Y. Kim, B.S. Kim, Int. J. Hydrogen Ener., 41, 13504-13512 (2016).
  • J.M.G. Dominguez, P. Castell, S.G. Bespin, A.C. Anson, A.M. Diez- Pascual, M.A. Gomez-Fatou, A.M. Benito, W.K. Maser, M.T. Martinez, J. Mater. Chem., 22, 21285-21297 (2012).
  • J.F. Macro, J.R. Gancedo, M. Gracia, J.L. Gautier, E. Rios, F.J. Berry, J. Solid State Chem., 153, 74-81 (2000).
  • J. Xu, L. Gao, J. Cao, W. Wang, Z. Chen, Electrochem. Acta, 56, 732–736 2010).
  • J. M. Gonz_alez-Dom_ınguez, P. Castell, S. Besp_ın-Gasc_on, A. Ans_on- Casaos, A. M. D_ıez-Pascual, M. A. G_omez-Fatou, A. M. Benito, W. K. Maser and M. T. Mart_ınez, J. Mater. Chem., 22, 21285(2012).
  • J. Huang, P. Xu, D. Cao, X. Zhou, S. Yang, Y. Li and G. Wang, J. Power Sources, 246, 371-376 (2014).
  • J. G. Wang, Y. Yang, Z. H. Huang and F. Y. Kang, Carbon, 61, 190–199 (2013).
  • I. Acznik, K. Lota, A. Sierczynska and G. Lota, Int. J. Electrochem. Sci., 9, 2518(2014).
  • H. Yang, S. Kannappan, A.S. Pandian, J.H Jang, Y.S. Lee and W. Lu, Nanotechnology, 28(44), 445401(2017).
  • H. Xia, Y. Wang, J.i Lin and L. Lu, Nanoscale Res. Lett., 1(2012).
  • H. Wang, Y. Liang, T. Mirfakhrai, Z. Chen, H. Casalongue, H. Dai, Nano Res., 4, 729-736 (2011).
  • H. Wang, Q. Hao and X. Yang, Electrochem. Commun., 11, 1158(2009).
  • H. M. Cheng, IEEE, 49 (2010).
  • H. Kabbour, T. F. Baumann, J. H. Satcher, A. Saulnier and C. C. Ahn, Chem. Mater., 18, 6085–6087(2006).
  • Galus Z. Fundamentals of Electrochemical Analysis. New York: Ellis Horwood, 1976.
  • F. Zhang, T. Zhang, X. Yang, L. Zhang, K. Leng, Y. Huang and Y. Chen, Ener. Environ. Sci., 6, 1623-1632 (2013).
  • F. X. Wang, S. Y. Xiao, Y. Y. Hou, C. L. Hu, L. L. Liu and Y. P. Wu, RSC Adv., 3, 13059–13084 (2013).
  • F. Hu, C. Chen, Z. Wang, G. Wei, P. K. Shen, Electrochim. Acta, 52, 1087– 1091(2006).
  • E. Frackowiak and F. Beguin, Carbon, 39, 937–950(2001).
  • Daoping Cai, Bin Liu, Dandan Wang, Lingling Wang, Yuan Liu, Han Li, Yanrong Wang, Qiuhong Li and Taihong Wang, J. Mater. Chem. A, 2, 4954(2014).
  • D.W. Wang, F. Li, J. Zhao, W. Ren, Z.G. Chen, J. Tan, Z.S. Wu, I. Gentle, G.Q. Lu and H.M. Cheng, Acsnano, 3, 1745(2009).
  • D. Santos-Martin, S. Arnaltes, and J. L. R. Amenedo. Electr. Pow. Syst. Res., 78(11),1837 – 1840(2008).
  • D. Ghosh, M. Mandal, and C. K. Das, Langmuir, 31, 7835−7843(2015).
  • D. Deng, B.S. Kim, M. Gopiraman, I.S. Kim, RSC Adv., 5, 81492-81498 (2015).
  • D. B. Robinson, J. Power Sources, 195, 3748–3756(2010).
  • C. Zheng, L. Qi, M. Yoshio, H. Wang, J. Power Sources, 195, 4406- 4409(2010).
  • C. Zhao and W. Zheng, Frontiers Energy Research, 1(2015).
  • C. Z. Yuan, J. Y. Li, L. R. Hou, X. G. Zhang, L. F. Shen and X. W. Lou, Adv. Funct. Mater., 22, 4592–4597 (2012).
  • C. Yuan, J. Li, L. Hou, J. Lin, X. Zhang and S. Xiong, J. Mater. Chem. A, 1, 11145–11151 (2013).
  • C. M. Zhang, L. J. Xie, W. Song, J. L. Wang, G. H. Sun and K. X. Li, J. Electroanal. Chem., 706, 1–6 (2013).
  • C. Liu, Z. Yu, D. Neff, A. Zhamu and B.Z Jang, Nano lett., 10, 4863(2010).
  • C. Liu, D. Gui and J. Liu, IEEE, 177(2014).
  • C. Guan, K. Wang, C. Yang, and X. S. Zhao, Micropor. Mesopor. Mat., 118, 503–507(2009).
  • C. Guan, J. Liu, Y. Wang, L. Mao, Z. Fan, Z. Shen, H. Zhang, J. Wang, ACS Nano, 9(5), 5198–5207 (2015).
  • C. Du and N. Pan, Nanotech. Law & Business, 4, 569(2007).
  • BES Workshop, Technology and Applied R&D Needs for Electrical Energy Storage, 2007.
  • B. Panella, M. Hirscher and S. Roth, Carbon, 43, 2209–2214(2005).
  • B. E. Conway, J. Electrochem. Soc., 138, 1539–1548(1991).
  • Ashok Kumar Das, Rama K. Layek, Nam Hoon Kim, Daeseung Jung and Joong Hee Lee, Nanoscale, 6, 10657(2014).
  • Alexandra Norton Haner, Philip N. Ross, J. Phys. Chem., 95, 9, 3740– 3746(1991).
  • A.P. Singh, P. B. Karandikar and N.K. Tiwari, IEEE, 669(2015).
  • A.O. Mary, University of Nottingham, (2012).
  • A.M. Namisnyk, University of Technology, Sydney, (2003).
  • A. M. Jiwo, University of Nottingham, (2012).
  • A. Gonz lez, E. Goikolea, J. A. Barrena and R. Mysyk, Renew. Sust. Energ Rev., 58, 1189(2016).