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Energies 2020, 13, 420 78 of 96 353. Khan,A.;Ahmed,M.I.;Adam,A.;Azad,A.M.;Qamar,M.Anovelfabricationmethodologyforsulfur-doped ZnO nanorods as an active photoanode for improved water oxidation in visible-light regime. Nanotechnology 2017, 28, 1–9. [CrossRef] [PubMed] 354. Zhang, R.; Fang, Y.; Chen, T.; Qu, F.-L.; Liu, Z.; Du, G.; Asiri, A.M.; Gao, T.; Sun, X. Enhanced photoelectrochemical water oxidation performance of Fe2O3 nanorods array by S doping. ACS Sustain. Chem. Eng. 2017, 5, 7502–7506. [CrossRef] 355. Sharma,A.;Chakraborty,M.;Anwar,Z.;Sahoo,P.;Thangavel,R.Structural,OpticalandPhotoelectrochemical Properties of Trivalent Impurity (B3+) Doped ZnO Nanorods Grown by Facile Hydrothermal Technique. In Proceedings of the International Conference on Energy, Communication, Data Analytics and Soft Computing, ICECDS 2017, Chennai, India, 1–2 August 2017; pp. 2491–2493. 356. Kang, X.; Liu, S.; Dai, Z.; He, Y.; Song, X.; Tan, Z. Titanium Dioxide: From Engineering to Applications. Catalysts 2019, 9, 191. [CrossRef] 357. Mao, S.S.; Shen, S.; Guo, L. Nanomaterials for renewable hydrogen production, storage and utilization. Prog. Nat. Sci. Mater. Int. 2012, 22, 522–534. [CrossRef] 358. Wang,G.;Ling,Y.;Wang,H.;Xihong,L.;Li,Y.Chemicallymodifiednanostructuresforphotoelectrochemical water splitting. J. Photochem. Photobiol. C Photochem. Rev. 2014, 18, 35–51. [CrossRef] 359. Zhang,X.;Liu,Y.;Kang,Z.3DbranchedZnOnanowirearraysdecoratedwithplasmonicAunanoparticles for high-performance photoelectrochemical water splitting. Acs Appl. Mater. Interfaces 2014, 6, 4480–4489. [CrossRef] 360. Wu,N.Plasmonicmetal-semiconductorphotocatalystsandphotoelectrochemicalcells:Areview.Nanoscale 2018, 10, 2679–2696. [CrossRef] 361. Xiao, F.X.; Liu, B. Plasmon-dictated photo-electrochemical water splitting for solar-to-chemical energy conversion: Current status and future perspectives. Adv. Mater. Interfaces 2018, 5, 1–21. [CrossRef] 362. Yu, Z.; Li, F.; Sun, L. Recent advances in dye-sensitized photoelectrochemical cells for solar hydrogen production based on molecular components. Energy Environ. Sci. 2015, 8, 760–775. [CrossRef] 363. Li, F.; Fan, K.; Xu, B.; Gabrielsson, E.; Daniel, Q.; Li, L.; Sun, L. Organic dye-sensitized tandem photoelectrochemical cell for light driven total water splitting. J. Am. Chem. Soc. 2015, 137, 9153–9159. [CrossRef] 364. Swierk, J.R.; Mallouk, T.E. Design and development of photoanodes for water-splitting dye-sensitized photoelectrochemical cells. Chem. Soc. Rev. 2013, 42, 2357–2387. [CrossRef] [PubMed] 365. Swierk,J.R.;Méndez-Hernández,D.D.;McCool,N.S.;Liddell,P.;Terazono,Y.;Pahk,I.;Tomlin,J.J.;Oster,N.V.; Moore, T.A.; Moore, A.L.; et al. Metal-free organic sensitizers for use in water-splitting dye-sensitized photoelectrochemical cells. Proc. Natl. Acad. Sci. USA 2015, 112, 1681–1686. [CrossRef] [PubMed] 366. Youngblood,J.W.;Lee,S.H.A.;Kobayashi,Y.;Hernandez-Pagan,E.A.;Hoertz,P.G.;Moore,T.A.;Moore,A.L.; Gust, D.; Mallouk, T.E. Photoassisted overall water splitting in a visible light-absorbing dye-sensitized photoelectrochemical cell. J. Am. Chem. Soc. 2009, 131, 926–927. [CrossRef] [PubMed] 367. Zhang,L.;Gao,Y.;Ding,X.;Yu,Z.;Sun,L.High-performancephotoelectrochemicalcellsbasedonabinuclear ruthenium catalyst for visible-light-driven water oxidation. ChemSusChem 2014, 7, 2801–2804. [CrossRef] 368. Li,X.;Liu,A.;Chu,D.;Zhang,C.;Du,Y.;Huang,J.;Yang,P.Highperformanceofmanganeseporphyrin sensitized p-type CuFe2O4 photocathode for solar water splitting to produce hydrogen in a tandem photoelectrochemical cell. Catalysts 2018, 8, 108. [CrossRef] 369. Thorne,J.E.;Zhao,Y.;He,D.;Fan,S.;Vanka,S.;Mi,Z.;Wang,D.Understandingtheroleofco-catalystson silicon photocathodes using intensity modulated photocurrent spectroscopy. Phys. Chem. Chem. Phys. 2017, 19, 29653–29659. [CrossRef] 370. Li,D.;Shi,J.;Li,C.Transition-metal-basedelectrocatalystsascocatalystsforphotoelectrochemicalwater splitting: A mini review. Small 2018, 14, 1–22. [CrossRef] 371. Xu, X.-T.; Pan, L.; Zhang, X.; Wang, L.; Zou, J.-J. Rational design and construction of cocatalysts for semiconductor-based photo-electrochemical oxygen evolution: A comprehensive review. Adv. Sci. 2019, 6, 1801505. [CrossRef] 372. Song, J.T.; Iwasaki, T.; Hatano, M. Pt co-catalyst effect on photoelectrochemical properties of 3C-SiC photo-anode. Jpn. J. Appl. Phys. 2014, 53, 2–6. [CrossRef]

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