172
Y. Li et al.
172. Ming T, Feng W, Tang Q, Wang F, Sun L, Wang J, Yan C (2009) Growth of tetrahexahedral
gold nanocrystals with high-index facets. J Am Chem Soc 131(45):16350–16351
173. Tian N, Zhou Z-Y, Yu N-F, Wang L-Y, Sun S-G (2010) Direct electrodeposition of tetrahexahedral Pd nanocrystals with high-index facets and high catalytic activity for ethanol
electrooxidation. J Am Chem Soc 132(22):7580–7581
174. Zhang J, Langille MR, Personick ML, Zhang K, Li S, Mirkin CA (2010) Concave cubic gold
nanocrystals with high-index facets. J Am Chem Soc 132(40):14012–14014
175. Personick ML, Langille MR, Zhang J, Mirkin CA (2011) Shape control of gold nanoparticles
by silver underpotential deposition. Nano Lett 11(8):3394–3398
176. Tran TT, Lu X (2011) Synergistic effect of Ag and Pd ions on shape-selective growth of
polyhedral Au nanocrystals with high-index facets. J Phy Chem C 115(9):3638–3645
177. Ma Y, Kuang Q, Jiang Z, Xie Z, Huang R, Zheng L (2008) Synthesis of trisoctahedral gold
nanocrystals with exposed high-index facets by a facile chemical method. Angew Chem Int
Ed 47(46):8901–8904
178. Huang X, Zhao Z, Fan J, Tan Y, Zheng N (2011) Amine-assisted synthesis of concave polyhedral platinum nanocrystals having 411 high-index facets. J Am Chem Soc 133(13):4718–4721
179. Zhou Z-Y, Tian N, Huang Z-Z, Chen D-J, Sun S-G (2009) Nanoparticle catalysts with
high energy surfaces and enhanced activity synthesized by electrochemical method. Faraday
Discuss 140:81–92
180. Wang C, Daimon H, Lee Y, Kim J, Sun S (2007) Synthesis of monodisperse Pt nanocubes
and their enhanced catalysis for oxygen reduction. J Am Chem Soc 129(22):6974–6975
181. Liang HW, Cao X, Zhou F, Cui CH, Zhang WJ, Yu SH (2011) A free-standing Pt-nanowire
membrane as a highly stable electrocatalyst for the oxygen reduction reaction. Adv Mater
23(12):1467–1471
182. Liang HW, Liu S, Gong JY, Wang SB, Wang L, Yu SH (2009) Ultrathin Te nanowires:
an excellent platform for controlled synthesis of ultrathin platinum and palladium
nanowires/nanotubes with very high aspect ratio. Adv Mater 21(18):1850–1854
183. Sun S, Jaouen F, Dodelet JP (2008) Controlled growth of Pt nanowires on carbon nanospheres
and their enhanced performance as electrocatalysts in PEM fuel cells. Adv Mater 20(20):3900–
3904
184. Sun S, Zhang G, Geng D, Chen Y, Banis MN, Li R, Cai M, Sun X (2010) Direct growth
of single-crystal Pt nanowires on Sn@ CNT nanocable: 3D electrodes for highly active
electrocatalysts. Chem–A Eur J 16(3):829–835
185. Koenigsmann C, Zhou W-P, Adzic RR, Sutter E, Wong SS (2010) Size-dependent enhancement of electrocatalytic performance in relatively defect-free, processed ultrathin platinum
nanowires. Nano Lett 10(8):2806–2811
186. Bu L, Guo S, Zhang X, Shen X, Su D, Lu G, Zhu X, Yao J, Guo J, Huang X (2016) Surface engineering of hierarchical platinum-cobalt nanowires for efficient electrocatalysis. Nat Commun
7(1):1–10
187. Choi S-I, Xie S, Shao M, Odell JH, Lu N, Peng H-C, Protsailo L, Guerrero S, Park J, Xia X
(2013) Synthesis and characterization of 9 nm Pt–Ni octahedra with a record high activity of
3.3 A/mgPt for the oxygen reduction reaction. Nano Lett. 13(7):3420–3425
188. Mukerjee S (1990) Particle size and structural effects in platinum electrocatalysis. J Appl
Electrochem 20(4):537–548
189. Zhang J, Vukmirovic MB, Sasaki K, Nilekar AU, Mavrikakis M, Adzic RR (2005) Mixedmetal Pt monolayer electrocatalysts for enhanced oxygen reduction kinetics. J Am Chem Soc
127(36):12480–12481
190. Mazumder V, Chi M, More KL, Sun S (2010) Core/shell Pd/FePt nanoparticles as an active
and durable catalyst for the oxygen reduction reaction. J Am Chem Soc 132(23):7848–7849
191. Zhang H, Yin Y, Hu Y, Li C, Wu P, Wei S, Cai C (2010) Pd@ Pt core− shell nanostructures with controllable composition synthesized by a microwave method and their enhanced
electrocatalytic activity toward oxygen reduction and methanol oxidation. J Phy Chem C
114(27):11861–11867
Y. Li et al.
172. Ming T, Feng W, Tang Q, Wang F, Sun L, Wang J, Yan C (2009) Growth of tetrahexahedral
gold nanocrystals with high-index facets. J Am Chem Soc 131(45):16350–16351
173. Tian N, Zhou Z-Y, Yu N-F, Wang L-Y, Sun S-G (2010) Direct electrodeposition of tetrahexahedral Pd nanocrystals with high-index facets and high catalytic activity for ethanol
electrooxidation. J Am Chem Soc 132(22):7580–7581
174. Zhang J, Langille MR, Personick ML, Zhang K, Li S, Mirkin CA (2010) Concave cubic gold
nanocrystals with high-index facets. J Am Chem Soc 132(40):14012–14014
175. Personick ML, Langille MR, Zhang J, Mirkin CA (2011) Shape control of gold nanoparticles
by silver underpotential deposition. Nano Lett 11(8):3394–3398
176. Tran TT, Lu X (2011) Synergistic effect of Ag and Pd ions on shape-selective growth of
polyhedral Au nanocrystals with high-index facets. J Phy Chem C 115(9):3638–3645
177. Ma Y, Kuang Q, Jiang Z, Xie Z, Huang R, Zheng L (2008) Synthesis of trisoctahedral gold
nanocrystals with exposed high-index facets by a facile chemical method. Angew Chem Int
Ed 47(46):8901–8904
178. Huang X, Zhao Z, Fan J, Tan Y, Zheng N (2011) Amine-assisted synthesis of concave polyhedral platinum nanocrystals having 411 high-index facets. J Am Chem Soc 133(13):4718–4721
179. Zhou Z-Y, Tian N, Huang Z-Z, Chen D-J, Sun S-G (2009) Nanoparticle catalysts with
high energy surfaces and enhanced activity synthesized by electrochemical method. Faraday
Discuss 140:81–92
180. Wang C, Daimon H, Lee Y, Kim J, Sun S (2007) Synthesis of monodisperse Pt nanocubes
and their enhanced catalysis for oxygen reduction. J Am Chem Soc 129(22):6974–6975
181. Liang HW, Cao X, Zhou F, Cui CH, Zhang WJ, Yu SH (2011) A free-standing Pt-nanowire
membrane as a highly stable electrocatalyst for the oxygen reduction reaction. Adv Mater
23(12):1467–1471
182. Liang HW, Liu S, Gong JY, Wang SB, Wang L, Yu SH (2009) Ultrathin Te nanowires:
an excellent platform for controlled synthesis of ultrathin platinum and palladium
nanowires/nanotubes with very high aspect ratio. Adv Mater 21(18):1850–1854
183. Sun S, Jaouen F, Dodelet JP (2008) Controlled growth of Pt nanowires on carbon nanospheres
and their enhanced performance as electrocatalysts in PEM fuel cells. Adv Mater 20(20):3900–
3904
184. Sun S, Zhang G, Geng D, Chen Y, Banis MN, Li R, Cai M, Sun X (2010) Direct growth
of single-crystal Pt nanowires on Sn@ CNT nanocable: 3D electrodes for highly active
electrocatalysts. Chem–A Eur J 16(3):829–835
185. Koenigsmann C, Zhou W-P, Adzic RR, Sutter E, Wong SS (2010) Size-dependent enhancement of electrocatalytic performance in relatively defect-free, processed ultrathin platinum
nanowires. Nano Lett 10(8):2806–2811
186. Bu L, Guo S, Zhang X, Shen X, Su D, Lu G, Zhu X, Yao J, Guo J, Huang X (2016) Surface engineering of hierarchical platinum-cobalt nanowires for efficient electrocatalysis. Nat Commun
7(1):1–10
187. Choi S-I, Xie S, Shao M, Odell JH, Lu N, Peng H-C, Protsailo L, Guerrero S, Park J, Xia X
(2013) Synthesis and characterization of 9 nm Pt–Ni octahedra with a record high activity of
3.3 A/mgPt for the oxygen reduction reaction. Nano Lett. 13(7):3420–3425
188. Mukerjee S (1990) Particle size and structural effects in platinum electrocatalysis. J Appl
Electrochem 20(4):537–548
189. Zhang J, Vukmirovic MB, Sasaki K, Nilekar AU, Mavrikakis M, Adzic RR (2005) Mixedmetal Pt monolayer electrocatalysts for enhanced oxygen reduction kinetics. J Am Chem Soc
127(36):12480–12481
190. Mazumder V, Chi M, More KL, Sun S (2010) Core/shell Pd/FePt nanoparticles as an active
and durable catalyst for the oxygen reduction reaction. J Am Chem Soc 132(23):7848–7849
191. Zhang H, Yin Y, Hu Y, Li C, Wu P, Wei S, Cai C (2010) Pd@ Pt core− shell nanostructures with controllable composition synthesized by a microwave method and their enhanced
electrocatalytic activity toward oxygen reduction and methanol oxidation. J Phy Chem C
114(27):11861–11867
