References
23
References
1. Grimes C, Varghese O, Ranjan S (2007) Light, water, hydrogen: the solar generation of
hydrogen by water photoelectrolysis. Springer Science and Business Media
2. Kochuveedu ST (2016) Photocatalytic and photoelectrochemical water splitting on TiO2 via
photosensitization. J Nanomater
3. Kadassery KJ, Dey SK, Cannella AF, Surendhran R, Lacy DC (2017) Photochemical watersplitting with organomanganese complexes. Inorg Chem 56(16):9954–9965
4. Vozniuk O, Tanchoux N, Millet J-M, Albonetti S, Di Renzo F, Cavani F (2019) Spinel mixed
oxides for chemical-loop reforming: from solid state to potential application. In: Studies in
surface science and catalysis, vol 178. Elsevier, pp 281–302
5. Szymanski P, El-Sayed MA (2014) Some recent developments in photoelectrochemical water
splitting using nanostructured TiO 2: a short review. In: Marco Antonio Chaer Nascimento.
Springer, pp 7–18
6. Wang X, Jiang X, Sharman E, Yang L, Li X, Zhang G, Zhao J, Luo Y, Jiang J (2019) Isolating
hydrogen from oxygen in photocatalytic water splitting with a carbon-quantum-dot/carbonnitride hybrid. J Mater Chem A 7(11):6143–6148
7. Wang Y, Zhou M, He Y, Zhou Z, Sun Z (2020) In situ loading CuO quantum dots on
TiO2 nanosheets as cocatalyst for improved photocatalytic water splitting. J Alloy Compd
813:152184
8. Ye B, Huang L, Hou Y, Jiang R, Sun L, Yu Z, Zhang B, Huang Y, Zhang Y (2019) Pt (111)
quantum dot decorated flower-like αFe 2 O 3 (104) thin film nanosheets as a highly efficient
bifunctional electrocatalyst for overall water splitting. J Mater Chem A 7(18):11379–11386
9. Tam TV, Kang SG, Kim MH, Lee SG, Hur SH, Chung JS, Choi WM (2019) Novel graphene
hydrogel/B-doped graphene quantum dots composites as trifunctional electrocatalysts for Zn−
air batteries and overall water splitting. Adv Energy Mater 9(26):1900945
10. Shi R, Liu F, Wang Z, Weng Y, Chen Y (2019) Black/red phosphorus quantum dots for photocatalytic water splitting: from a type I heterostructure to a Z-scheme system. Chem Commun
55(83):12531–12534
11. Lin L, Sun Z, Yuan M, Yang H, Li H, Nan C, Jiang H, Ge S, Sun G (2019) α-MoC1–x Quantum
dots encapsulated in nitrogen-doped carbon for hydrogen evolution reaction at All pH values.
ACS Sustain Chem Eng 7(10):9637–9645
12. Wu W, Wu Y, Zheng D, Wang K, Tang Z (2019) Ni@ Ru core-shell nanoparticles on flower-like
carbon nanosheets for hydrogen evolution reaction at All-pH values, oxygen evolution reaction
and overall water splitting in alkaline solution. Electrochim Acta 320:134568
13. Yu J, Zhang L, Qian J, Zhu Z, Ni S, Liu G, Xu X (2019) In situ exsolution of silver nanoparticles
on AgTaO3-SrTiO3 solid solutions as efficient plasmonic photocatalysts for water splitting.
Appl Catal B 256:117818
14. Chen Y, Xu S, Zhu S, Jacob RJ, Pastel G, Wang Y, Li Y, Dai J, Chen F, Xie H (2019) Millisecond
synthesis of CoS nanoparticles for highly efficient overall water splitting. Nano Res 12(9):2259–
2267
15. Gong J, Lai Y, Lin C (2010) Electrochemically multi-anodized TiO2 nanotube arrays for
enhancing hydrogen generation by photoelectrocatalytic water splitting. Electrochim Acta
55(16):4776–4782
16. Das C, Roy P, Yang M, Jha H, Schmuki P (2011) Nb doped TiO 2 nanotubes for enhanced
photoelectrochemical water-splitting. Nanoscale 3(8):3094–3096
17. Park JH, Kim S, Bard AJ (2006) Novel carbon-doped TiO2 nanotube arrays with high aspect
ratios for efficient solar water splitting. Nano Lett 6(1):24–28
18. Yan L, Cao L, Dai P, Gu X, Liu D, Li L, Wang Y, Zhao X (2017) Metal-Organic Frameworks
Derived Nanotube of Nickel-Cobalt Bimetal Phosphides as Highly Efficient Electrocatalysts
for Overall Water Splitting. Adv Func Mater 27(40):1703455
19. Qu K, Zheng Y, Jiao Y, Zhang X, Dai S, Qiao SZ (2017) Polydopamine-Inspired, Dual
Heteroatom-Doped Carbon Nanotubes for Highly Efficient Overall Water Splitting. Adv
Energy Mater 7(9):1602068
23
References
1. Grimes C, Varghese O, Ranjan S (2007) Light, water, hydrogen: the solar generation of
hydrogen by water photoelectrolysis. Springer Science and Business Media
2. Kochuveedu ST (2016) Photocatalytic and photoelectrochemical water splitting on TiO2 via
photosensitization. J Nanomater
3. Kadassery KJ, Dey SK, Cannella AF, Surendhran R, Lacy DC (2017) Photochemical watersplitting with organomanganese complexes. Inorg Chem 56(16):9954–9965
4. Vozniuk O, Tanchoux N, Millet J-M, Albonetti S, Di Renzo F, Cavani F (2019) Spinel mixed
oxides for chemical-loop reforming: from solid state to potential application. In: Studies in
surface science and catalysis, vol 178. Elsevier, pp 281–302
5. Szymanski P, El-Sayed MA (2014) Some recent developments in photoelectrochemical water
splitting using nanostructured TiO 2: a short review. In: Marco Antonio Chaer Nascimento.
Springer, pp 7–18
6. Wang X, Jiang X, Sharman E, Yang L, Li X, Zhang G, Zhao J, Luo Y, Jiang J (2019) Isolating
hydrogen from oxygen in photocatalytic water splitting with a carbon-quantum-dot/carbonnitride hybrid. J Mater Chem A 7(11):6143–6148
7. Wang Y, Zhou M, He Y, Zhou Z, Sun Z (2020) In situ loading CuO quantum dots on
TiO2 nanosheets as cocatalyst for improved photocatalytic water splitting. J Alloy Compd
813:152184
8. Ye B, Huang L, Hou Y, Jiang R, Sun L, Yu Z, Zhang B, Huang Y, Zhang Y (2019) Pt (111)
quantum dot decorated flower-like αFe 2 O 3 (104) thin film nanosheets as a highly efficient
bifunctional electrocatalyst for overall water splitting. J Mater Chem A 7(18):11379–11386
9. Tam TV, Kang SG, Kim MH, Lee SG, Hur SH, Chung JS, Choi WM (2019) Novel graphene
hydrogel/B-doped graphene quantum dots composites as trifunctional electrocatalysts for Zn−
air batteries and overall water splitting. Adv Energy Mater 9(26):1900945
10. Shi R, Liu F, Wang Z, Weng Y, Chen Y (2019) Black/red phosphorus quantum dots for photocatalytic water splitting: from a type I heterostructure to a Z-scheme system. Chem Commun
55(83):12531–12534
11. Lin L, Sun Z, Yuan M, Yang H, Li H, Nan C, Jiang H, Ge S, Sun G (2019) α-MoC1–x Quantum
dots encapsulated in nitrogen-doped carbon for hydrogen evolution reaction at All pH values.
ACS Sustain Chem Eng 7(10):9637–9645
12. Wu W, Wu Y, Zheng D, Wang K, Tang Z (2019) Ni@ Ru core-shell nanoparticles on flower-like
carbon nanosheets for hydrogen evolution reaction at All-pH values, oxygen evolution reaction
and overall water splitting in alkaline solution. Electrochim Acta 320:134568
13. Yu J, Zhang L, Qian J, Zhu Z, Ni S, Liu G, Xu X (2019) In situ exsolution of silver nanoparticles
on AgTaO3-SrTiO3 solid solutions as efficient plasmonic photocatalysts for water splitting.
Appl Catal B 256:117818
14. Chen Y, Xu S, Zhu S, Jacob RJ, Pastel G, Wang Y, Li Y, Dai J, Chen F, Xie H (2019) Millisecond
synthesis of CoS nanoparticles for highly efficient overall water splitting. Nano Res 12(9):2259–
2267
15. Gong J, Lai Y, Lin C (2010) Electrochemically multi-anodized TiO2 nanotube arrays for
enhancing hydrogen generation by photoelectrocatalytic water splitting. Electrochim Acta
55(16):4776–4782
16. Das C, Roy P, Yang M, Jha H, Schmuki P (2011) Nb doped TiO 2 nanotubes for enhanced
photoelectrochemical water-splitting. Nanoscale 3(8):3094–3096
17. Park JH, Kim S, Bard AJ (2006) Novel carbon-doped TiO2 nanotube arrays with high aspect
ratios for efficient solar water splitting. Nano Lett 6(1):24–28
18. Yan L, Cao L, Dai P, Gu X, Liu D, Li L, Wang Y, Zhao X (2017) Metal-Organic Frameworks
Derived Nanotube of Nickel-Cobalt Bimetal Phosphides as Highly Efficient Electrocatalysts
for Overall Water Splitting. Adv Func Mater 27(40):1703455
19. Qu K, Zheng Y, Jiao Y, Zhang X, Dai S, Qiao SZ (2017) Polydopamine-Inspired, Dual
Heteroatom-Doped Carbon Nanotubes for Highly Efficient Overall Water Splitting. Adv
Energy Mater 7(9):1602068
