References
1. Qiu B-C, Zhu Q-H, Xing M-Y, Zhang J-L (2017) A robust and efficient catalyst of
Cd x Zn 1Àx Se motivated by CoP for photocatalytic hydrogen evolution under sunlight irradiation. Chem Commun 53:897–900
2. Qiu B-C, Zhu Q-H, Du M-M, Fan L-G, Xing M-Y, Zhang J-L (2017) Efficient solar light
harvesting CdS/Co 9 S 8 hollow cubes for Z-scheme photocatalytic water splitting. Angew
Chem 129:2728–2732
3. Wu Q-F, Bao S-Y, Tian B-Z, Xiao Y-F, Zhang J-L (2016) Double-diffusion-based synthesis of
BiVO 4 mesoporous single crystals with enhanced photocatalytic activity for oxygen evolution.
Chem Commun 52:7478–7481
4. Xing M-Y, Zhang J-L, Chen F, Tian B-Z (2011) An economic method to prepare vacuum
activated photocatalysts with high photo-activities and photosensitivities. Chem Commun
47:4947–4949
5. Du J, Du Z-L, Hu J-S, Pan Z-X, Shen Q, Sun J-K, Long D-H, Dong H, Sun L-T, Zhong X-H,
Wan L-J (2016) Zn-Cu-In-Se quantum dot solar cells with a certified power conversion
efficiency of 11.6%. J Am Chem Soc 138:4201–4209
6. Zhao K, Pan Z-X, Mora-Seró I, Wang H, Song Y, Gong X-Q, Wang J, Bonn M, Bisquert J,
Zhong X-H (2015) Boosting power conversion efficiencies of quantum-dot-sensitized solar
cells beyond 8% by recombination control. J Am Chem Soc 137:5602–5609
Fig. 13.26 SEM images of (a) 5% Ag/AgBr@Fe 2 O 3 [140]. Reproduced from Ref. [140] by
permission of the Royal Society of Chemistry. (b) Ag/AgCl-AC and Ag/AgCl-MAC
[143]. Reprinted from Ref. [143], Copyright 2014, with permission from Elsevier. (c) Fe 3 O 4 and
γ-Fe 2 O 3 @SiO 2 @AgBr:Ag [131]. (d) Schematic diagram illustrating the synthetic route of core–
shell structured γ-Fe 2 O 3 @SiO 2 @AgBr:Ag composite; (e) magnetic separation tests for
γ-Fe 2 O 3 @SiO 2 @AgBr:Ag and Fe 3 O 4 @SiO 2 @AgBr:Ag using a cubic Nd-Fe-B magnet
[131]. (Reprinted from Ref. [131], Copyright 2014, with permission from Elsevier)
References
335
1. Qiu B-C, Zhu Q-H, Xing M-Y, Zhang J-L (2017) A robust and efficient catalyst of
Cd x Zn 1Àx Se motivated by CoP for photocatalytic hydrogen evolution under sunlight irradiation. Chem Commun 53:897–900
2. Qiu B-C, Zhu Q-H, Du M-M, Fan L-G, Xing M-Y, Zhang J-L (2017) Efficient solar light
harvesting CdS/Co 9 S 8 hollow cubes for Z-scheme photocatalytic water splitting. Angew
Chem 129:2728–2732
3. Wu Q-F, Bao S-Y, Tian B-Z, Xiao Y-F, Zhang J-L (2016) Double-diffusion-based synthesis of
BiVO 4 mesoporous single crystals with enhanced photocatalytic activity for oxygen evolution.
Chem Commun 52:7478–7481
4. Xing M-Y, Zhang J-L, Chen F, Tian B-Z (2011) An economic method to prepare vacuum
activated photocatalysts with high photo-activities and photosensitivities. Chem Commun
47:4947–4949
5. Du J, Du Z-L, Hu J-S, Pan Z-X, Shen Q, Sun J-K, Long D-H, Dong H, Sun L-T, Zhong X-H,
Wan L-J (2016) Zn-Cu-In-Se quantum dot solar cells with a certified power conversion
efficiency of 11.6%. J Am Chem Soc 138:4201–4209
6. Zhao K, Pan Z-X, Mora-Seró I, Wang H, Song Y, Gong X-Q, Wang J, Bonn M, Bisquert J,
Zhong X-H (2015) Boosting power conversion efficiencies of quantum-dot-sensitized solar
cells beyond 8% by recombination control. J Am Chem Soc 137:5602–5609
Fig. 13.26 SEM images of (a) 5% Ag/AgBr@Fe 2 O 3 [140]. Reproduced from Ref. [140] by
permission of the Royal Society of Chemistry. (b) Ag/AgCl-AC and Ag/AgCl-MAC
[143]. Reprinted from Ref. [143], Copyright 2014, with permission from Elsevier. (c) Fe 3 O 4 and
γ-Fe 2 O 3 @SiO 2 @AgBr:Ag [131]. (d) Schematic diagram illustrating the synthetic route of core–
shell structured γ-Fe 2 O 3 @SiO 2 @AgBr:Ag composite; (e) magnetic separation tests for
γ-Fe 2 O 3 @SiO 2 @AgBr:Ag and Fe 3 O 4 @SiO 2 @AgBr:Ag using a cubic Nd-Fe-B magnet
[131]. (Reprinted from Ref. [131], Copyright 2014, with permission from Elsevier)
References
335
