Topics in Current Chemistry (2018) 376:42
1 3
same goal of decreasing over-potential as well as obtaining considerable electro-catalytic properties. Specifically, followed by the object of Ni-Co bimetallic catalyst,
Botte et al. [96] fabricated the Ni x Co y (OH) 2 (x:y represents the observed atom ratio
of Ni:Co in samples) catalysts using a similar electrodeposition method, and investigated the influence of various Ni/Co ratios on their electrochemical properties. It
Fig. 10 SEM images of the sheet-like (a); flower-like (b); nano-sheet (c); twine-like (d) Ni(OH) 2 /Ni
foam, respectively. The inset of a, c shows TEM images of the corresponding sheets Reproduced with
permission from Ref. [95]
Fig. 11 Comparative CVs of four Ni(OH) 2 /Ni foam with different morphologies (a); comparative cell
performance of DUPFC on these four anodes and Pd/C@TiC cathodes, catholyte was 2.0 M H 2 O 2 and
2.0 M H 2 SO 4 (b) Reproduced with permission from Ref. [95]
Reprinted from the journal
60
1 3
same goal of decreasing over-potential as well as obtaining considerable electro-catalytic properties. Specifically, followed by the object of Ni-Co bimetallic catalyst,
Botte et al. [96] fabricated the Ni x Co y (OH) 2 (x:y represents the observed atom ratio
of Ni:Co in samples) catalysts using a similar electrodeposition method, and investigated the influence of various Ni/Co ratios on their electrochemical properties. It
Fig. 10 SEM images of the sheet-like (a); flower-like (b); nano-sheet (c); twine-like (d) Ni(OH) 2 /Ni
foam, respectively. The inset of a, c shows TEM images of the corresponding sheets Reproduced with
permission from Ref. [95]
Fig. 11 Comparative CVs of four Ni(OH) 2 /Ni foam with different morphologies (a); comparative cell
performance of DUPFC on these four anodes and Pd/C@TiC cathodes, catholyte was 2.0 M H 2 O 2 and
2.0 M H 2 SO 4 (b) Reproduced with permission from Ref. [95]
Reprinted from the journal
60
