[1] GAMBINI M, STILO T, VELLINI M.Selection of metal hydrides for a thermal energy storage device to support low-temperature concentrating solar power plants[J].International Journal of Hydrogen Energy, 2020, 45(53):28404-28425. [2] HUANG T J, ZHANG L Y, SHI D W, et al.Dual use of Cu2ZnSnS4 in solar cells and energy storage devices[J].Solar Energy Materials and Solar Cells, 2018, 180:328-333. [3] CONTIGIANI C C, FORNÈS J P, GONZÁLEZ PÈREZ O, et al.Evaluation of a decaying swirling flow electrochemical reactor for the manufacture of colloidal sulphur by reduction of sulphur dioxide[J].Chemical Engineering and Processing - Process Intensification, 2020, 157:108111. [4] LAU D, SONG N, HALL C, et al.Hybrid solar energy harvesting and storage devices:the promises and challenges[J].Materials Today Energy, 2019, 13:22-44. [5] CHAUDHARY D K, DHAWAN P K, PATEL S P, et al.Large area semitransparent inverted organic solar cells with enhanced operational stability using TiO2 electron transport layer for building integrated photovoltaic devices[J].Materials Letters, 2021, 283:128725. [6] PEI J X, SONG X Y, CHU W B, et al.Ultraviolet light-assisted electrokinetic conversion based on TiO2 electrodes[J].Materials Today Energy, 2020, 18:100517. [7] GUERRA A, ACHOUR A, VIZIREANU S, et al.ZnO/Carbon nanowalls shell/core nanostructures as electrodes for supercapacitors[J].Applied Surface Science, 2019, 481:926-932. [8] PATIL D S, SHETTI N P, NAYAK D S, et al.Fabrication of multi-walled carbon nanotubes and ZnO nanoparticles composite electrode as a sensor for paracetamol[J].Materials Today:Proceedings, 2019, 18:1124-1131. [9] BOSCHLOO G, FITZMAURICE D.Spectroelectrochemistry of highly doped nanostructured tin dioxide electrodes[J].The Journal of Physical Chemistry B, 1999, 103(16):3093-3098. [10] KHATAVKAR S N, SARTALE S D.Α-Fe2O3 thin film on stainless steel mesh:a flexible electrode for supercapacitor[J].Materials Chemistry and Physics, 2019, 225:284-291. [11] GOULART L A, ALVES S A, MASCARO L H.Photoelectrochemical degradation of bisphenol a using Cu doped WO3 electrodes[J].Journal of Electroanalytical Chemistry, 2019, 839:123-133. [12] O'REGAN B, GRAETZEL M, FITZMAURICE D.Optical electrochemistry.2.Real-time spectroscopy of conduction band electrons in a metal oxide semiconductor electrode[J].The Journal of Physical Chemistry, 1991, 95(26):10525-10528. [13] BOSCHLOO G, FITZMAURICE D.Electron accumulation in nanostructured TiO2 (anatase) electrodes[J].The Journal of Physical Chemistry B, 1999, 103(37):7860-7868. [14] GUO M, MA G J.Alteration of onset potentials of Rh-doped SrTiO3 electrodes for photoelectrochemical water splitting[J].Journal of Catalysis, 2020, 391:241-246. [15] LENZMANN F, KRUEGER J, BURNSIDE S, et al.Surface photovoltage spectroscopy of dye-sensitized solar cells with TiO2, Nb2O5, and SrTiO3 nanocrystalline photoanodes:indication for electron injection from higher excited dye states[J].The Journal of Physical Chemistry B, 2001, 105(27):6347-6352. [16] YANG S M, KOU H Z, WANG J C, et al.Tunability of the band energetics of nanostructured SrTiO3 electrodes for dye-sensitized solar cells[J].The Journal of Physical Chemistry C, 2010, 114(9):4245-4249. [17] YANG S M, KOU H Z, WANG H J, et al.Preparation and band energetics of transparent nanostructured SrTiO3 film electrodes[J].The Journal of Physical Chemistry C, 2010, 114(2):815-819. [18] REDMOND G, FITZMAURICE D.Spectroscopic determination of flatband potentials for polycrystalline titania electrodes in nonaqueous solvents[J].The Journal of Physical Chemistry, 1993, 97(7):1426-1430. [19] ENRIGHT B, REDMOND G, FITZMAURICE D.Spectroscopic determination of flatband potentials for polycrystalline TiO2 electrodes in mixed solvent systems[J].The Journal of Physical Chemistry, 1994, 98(24):6195-6200. [20] ROTHENBERGER G, FITZMAURICE D, GRAETZEL M.Spectroscopy of conduction band electrons in transparent metal oxide semiconductor films:optical determination of the flatband potential of colloidal titanium dioxide films[J].The Journal of Physical Chemistry, 1992, 96(14):5983-5986. [21] O’REGAN B, GRÄTZEL M, FITZMAURICE D.Optical electrochemistry I:steady-state spectroscopy of conduction-band electrons in a metal oxide semiconductor electrode[J].Chemical Physics Letters, 1991, 183(1/2):89-93. [22] OOI K, MIYAI Y, SAKAKIHARA J.Mechanism of lithium(1+) insertion in spinel-type manganese oxide.Redox and ion-exchange reactions[J].Langmuir, 1991, 7(6):1167-1171. |