• Journal of Inorganic Materials
  • Vol. 36, Issue 5, 461 (2021)
Jinmin WANG1、2, Lijun HOU1, and Dongyun MA1、2
Author Affiliations
  • 11. School of Environmental and Materials Engineering, College of Engineering, Shanghai Polytechnic University, Shanghai 201209, China
  • 22. Department of Chemistry, College of Science, University of Shanghai for Science and Technology, Shanghai 200093, China
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    DOI: 10.15541/jim20200416 Cite this Article
    Jinmin WANG, Lijun HOU, Dongyun MA. Molybdenum Oxide Electrochromic Materials and Devices[J]. Journal of Inorganic Materials, 2021, 36(5): 461 Copy Citation Text show less
    References

    [1] S Z WANG, S W CAI, W A CAI et al. Organic-inorganic hybrid electrochromic materials, polysilsesquioxanes containing triarylamine, changing color from colorless to blue. Scientific Reports, 7, 14627(2017).

    [2] Z WANG, X Y WANG, S CONG et al. Towards full-colour tunability of inorganic electrochromic devices using ultracompact fabry- perot nanocavities. Nature Communications, 11, 302(2020).

    [3] Z WANG, X WANG, S CONG et al. Fusing electrochromic technology with other advanced technologies: a new roadmap for future development. Materials Science and Engineering: R: Reports, 140, 100524(2020).

    [4] A HASANI, Q V LE, T P NGUYEN et al. Facile solution synthesis of tungsten trioxide doped with nanocrystalline molybdenum trioxide for electrochromic devices. Scientific Reports, 7, 13258(2017).

    [5] Y S LIN, T H TSAI, S C HUNG et al. Enhanced lithium electrochromism of atmospheric pressure plasma jet-synthesized tungsten/ molybdenum oxide films for flexible electrochromic devices. Journal of Solid State Electrochemistry, 17, 1077-1088(2013).

    [6] C BECHINGER, S FERRERE, A ZABAN et al. Photoelectrochromic windows and displays. Nature, 383, 608-610(1996).

    [7] K XIONG, G EMILSSON, A MAZIZ et al. Plasmonic metasufaces with conjugated polymers for flexible electronic paper in color. Advanced Materials, 28, 9956-9960(2016).

    [8] J M WANG, H Y YU, D Y MA. Progress in the preparation and application of nanostructured manganese dioxide. Journal of Inorganic Materials, 35, 1307-1314(2020).

    [9] C C CHANG, P W CHI, P CHANDAN et al. Electrochemistry and rapid electrochromism control of MoO3/V2O5 hybrid nanobilayers. Materials, 12, 2475(2019).

    [10] T XU, E C WALTER, A AGRAWAL et al. High-contrast and fast electrochromic switching enabled by plasmonics. Nature Communications, 7, 10479(2016).

    [11] J R PLATT. Electrochromism, a possible change of color producible in dyes by an electric field. The Journal of Chemical Physics, 34, 862-863(1961).

    [12] Q SUI, X T REN, Y X DAI et al. Piezochromism and hydrochromism through electron transfer: new stories for viologen materials. Chemical Science, 8, 2758-2768(2017).

    [13] W H YU, Y ZHANG, E T KANG et al. Electroless metallization of dielectric SiLK surfaces functionalized by viologen. Journal of The Electrochemical Society, 150, F156-F163(2003).

    [14] S MI, J C WU, J LIU et al. AIEE-active and electrochromic bifunctional polymer and device composed thereof synchronously achieving electrochemical fluorescence switching and electrochromic switching. ACS Applied Materials & Interfaces, 7, 27511-27517(2015).

    [15] X M CHEN, H L LIU, Z P XU et al. Highly regiosymmetric homopolymer based on dioxythiophene for realizing water- processable blue-to-transmissive electrochrome. ACS Applied Materials & Interfaces, 7, 11387-11392(2015).

    [16] S K DEB. A novel electrophotographic system. Applied Optics, 8, 192-195(1969).

    [17] D G ATINAFU, W DONG, M DU. Controllable synthesis and surface modification of molybdenum oxide nanowires: a short review. Tungsten, 1, 258-265(2019).

    [18] Y C HE, T Z LI, X L ZHONG et al. Lattice and electronic structure variations in critical lithium doped nickel oxide thin film for superior anode electrochromism. Electrochimica Acta, 316, 143-151(2019).

    [19] S BULJA, R KOPF, K NOLAN et al. Tuneable dielectric and optical characteristics of tailor-made inorganic electro-chromic materials. Scientific Reports, 7, 13484(2017).

    [20] Y MA, X ZHANG, M YANG et al. Controlled growth of MoO3 nanorods on transparent conducting substrates. Materials Letters, 136, 146-149(2014).

    [21] Q Q ZHUO, J J TANG, J SUN et al. High efficient reduction of graphene oxide via nascent hydrogen at room temperature. Materials, 11, 340(2018).

    [22] Y B LI, Y BANDO, D GOLBERG et al. Field emission from MoO3 nanobelts. Applied Physics Letters, 81, 5048(2002).

    [23] H CHOI, J H HEO, S HA et al. Facile scalable synthesis of MoO2 nanoparticles by new solvothermal cracking process and their application to hole transporting layer for CH3NH3PbI3 planar perovskite solar cells. Chemical Engineering Journal, 310, 179-186(2017).

    [24] T TAO, Q Y CHEN, H P HU et al. MoO3 nanoparticles distributed uniformly in carbon matrix for supercapacitor applications. Materials Letters, 66, 102-105(2011).

    [25] L ZENG, C Y CHENG. A literature review of the recovery of molybdenum and vanadium from spent hydrodesulphurisation catalysts. Hydrometallurgy, 98, 1-9(2009).

    [26] R M J LEMOS, J C B ALCÁZAR, N L V CARREÑO et al. Influence of molybdenum trioxide thin film thickness on its electrochemical properties. Molecular Crystals and Liquid Crystals, 655, 40-50(2017).

    [27] P H YANG, P SUN, W J MAI. Electrochromic energy storage devices. Materials Today, 19, 394-402(2016).

    [28] X ZHANG, W J LI, Y LI et al. Research progress of inorganic all-solid-state electrochromic devices. Materials Science and Technology, 28, 140-149(2020).

    [29] R J MORTIMER, D R ROSSEINSKY, P M S MONK. Electrochromic Materials and Devices. Germany: Wiley-VCH Verlag GmbH & Co. KGaA, 1-638(2015).

    [30] H X JIA, X CAO, P S JIN. Advances in inorganic all-solid-state electrochromic materials and devices. Journal of Inorganic Materials, 35, 511-524(2020).

    [31] X H ZHAO, C WEI, Z Q GAI et al. Chemical vapor deposition and its application in surface modification of nanoparticles. Chemical Papers, 74, 767-778(2020).

    [32] K A GESHEVA, A CZIRAKI, T IVANOVA et al. Crystallization of chemically vapor deposited molybdenum and mixed tungsten/ molybdenum oxide films for electrochromic application. Thin Solid Films, 515, 4609-4613(2007).

    [33] T IVANOVA, K A GESHEVA, G POPKIROV et al. Electrochromic properties of atmospheric CVD MoO3 and MoO3-WO3 films and their application in electrochromic devices. Materials Science & Engineering B, 119, 232-239(2005).

    [34] M ARROYO-HERNÁNDEZ, R ÁLVARO, S SERRANO et al. Catalytic growth of ZnO nanostructures by r.f. magnetron sputtering. Nanoscale Research Letters, 6, 1-6(2011).

    [35] N USHA, R SIVAKUMAR, C SANJEEVIRAJA. Structural, optical and electrochromic properties of Nb2O5:MoO3 (95:5, 90:10, and 85:15) thin films prepared by RF magnetron sputtering technique. Materials Letters, 229, 189-192(2018).

    [36] J A ALVARADO, A MALDONADO, H JUAREZ et al. Characterization of nanostructured ZnO thin films deposited through vacuum evaporation. Beilstein Journal of Nanotechnology, 6, 971-975(2015).

    [37] M G VARNAMKHASTI, H R FALLAH, M ZADSAR. Effect of heat treatment on characteristics of nanocrystalline ZnO films by electron beam evaporation. Vacuum, 86, 871-875(2012).

    [38] N MIYATA, T SUZUKI, R OHYAMA. Physical properties of evaporated molybdenum oxide films. Thin Solid Films, 281, 218-222(1996).

    [39] D DIXIT, K V MADHURI. Effect of oxygen partial pressure on the growth of molybdenum trioxide thin films. Materials Today: Proceedings, 19, 2688-2692(2019).

    [40] G J YANG, S J PARK. Conventional and microwave hydrothermal synthesis and application of functional materials: a review. Materials, 12, 1-18(2019).

    [41] N QURESHI, S ARBUJ, M SHINDE et al. Swift tuning from spherical molybdenum microspheres to hierarchical molybdenum disulfide nanostructures by switching from solvothermal to hydrothermal synthesis route. Nano Convergence, 4, 25(2017).

    [42] E W SHI, C T XIA, B G WANG et al. Development application and of hydrothermal method. Journal of Inorganic Materials, 11, 193-206(1996).

    [43] E ZHOU, L L TIAN, Z F CHENG et al. Design of NiO flakes@CoMoO4 nanosheets core-shell architecture on Ni foam for high- performance supercapacitors. Nanoscale Research Letters, 14, 1-11(2019).

    [44] B YAO, L HUANG, J ZHANG et al. Flexible transparent molybdenum trioxide nanopaper for energy storage. Advanced Materials, 28, 6353-6358(2016).

    [45] S H HE, W D LI, L FENG et al. Rational interaction between the aimed gas and oxide surfaces enabling high-performance sensor: the case of acidic α-MoO3 nanorods for selective detection of triethylamine. Journal of Alloys and Compounds, 783, 574-582(2019).

    [46] P JITTIARPORN, S BADILESCU, M N A SAWAFTA et al. Electrochromic properties of Sol-Gel prepared hybrid transition metal oxides-a short review. Journal of Science: Advanced Materials and Devices, 2, 286-300(2017).

    [47] Y H WANG, M BOUCHNEB, J G ALAUZUN et al. Tuning texture and morphology of mesoporous TiO2 by non-hydrolytic Sol- Gel syntheses. Molecules, 23, 3006(2018).

    [48] M DHANASANKAR, K K PURUSHOTHAMAN, G MURALIDHARAN. Enhanced electrochromism in cerium doped molybdenum oxide thin films. Materials Research Bulletin, 45, 1969-1972(2010).

    [49] J Y ZHANG, Z R YU, J H DU. Fabrication and electrochromic properties of NiO electrodeposit films. Journal of Chinese Electron Microscopy Society, 16, 451-452(1997).

    [50] Y Y WEN, X H ZHONG, Y Z HONG et al. Fabrication of molybdenum oxides/carbon nanotube composite fibers by electrochemical deposition and its electrochemical behavior. Journal of the Chinese Ceramic Society, 40, 1220-1223(2012).

    [51] D V ZHUZHEL’SKII, K D YALDA, V N SPIRIDONOV et al. Electrochemical deposition of molybdenum oxide into films of poly (3,4-ethylenedioxythiophene) conducting polymer on glassy carbon substrates. Russian Journal of Applied Chemistry, 89, 1252-1260(2016).

    [52] E KÄRBER, A KATERSKI, O I ACIK et al. Low-cost plasmonic solar cells prepared by chemical spray pyrolysis. Beilstein Journal of Nanotechnology, 5, 2398-2402(2014).

    [53] I DUNDAR, M KRICHEVSKAYA, A KATERSKI et al. TiO2 thin films by ultrasonic spray pyrolysis as photocatalytic material for air purification. Royal Society Open Science, 6, 181578(2019).

    [54] J S CHO. Large scale process for low crystalline MoO3-carbon composite microspheres prepared by one-step spray pyrolysis for anodes in lithium-ion batteries. Nanomaterials, 9, 539(2019).

    [55] S H MOUSAVI-ZADEH, M B RAHMANI. Synthesis and ethanol sensing characteristics of nanostructured MoO3:Zn thin films. Surface Review and Letters, 25, 1850046(2018).

    [56] H YU, Y LI, L ZHAO et al. Novel MoO3-TiO2 composite nanorods films with improved electrochromic performance. Materials Letters, 169, 65-68(2016).

    [57] P MARTíN-RAMOS, I FERNÁNDEZ-COPPEL, M AVELLA et al. α-MoO3 crystals with a multilayer stack structure obtained by annealing from a lamellar MoS2/g-C3N4 nanohybrid. Nanomaterials, 8, 559(2018).

    [58] Y Z ZHANG, Y S HUANG, Y Z CAO et al. Synthesis and electro- photochromic properties of lithium-doped MoO3 films. Chinese Journal of Liquid Crystals and Displays, 17, 163-168(2002).

    [59] S S MAHAJAN, S H MUJAWAR, P S SHINDE et al. Structural, morphological, optical and electrochromic properties of Ti-doped MoO3 thin films. Solar Energy Materials and Solar Cells, 93, 183-187(2009).

    [60] M LAYEGH, F E GHODSI, H HADIPOUR. Experimental and theoretical study of Fe doping as a modifying factor in electrochemical behavior of mixed-phase molybdenum oxide thin films. Applied Physics A: Materials Science & Processing, 126, 372-387(2019).

    [61] OLFA KAMOUN, A MAMI, M A AMARA et al. Nanostructured Fe, Co-codoped MoO3 thin films. Micromachines, 10, 138(2019).

    [62] Y ZUO, D Y MA, Z P XU et al. Hydrothermal growth, device preparation and electrochromic properties of nano-molybdenum oxide film. Journal of Shanghai Second Polytechnic University, 34, 81-86(2017).

    [63] S LIU, Z P XU, D Y MA et al. Preparation of MoO3 thin film by MoS2 oxidation method, device assembly and electrochromic properties. Journal of Shanghai Second Polytechnic University, 35, 111-116(2018).

    [64] K KARTEN, A HEIN, M CIOBARU et al. Complementary hybrid electrodes for high contrast electrochromic devices with fast response. Nature Communications, 10, 4874(2019).

    [65] G ZHANG, W Z ZHANG, S M WANG. Preparation of molybdenum oxide/polypyrrole composite membrane and study on its discoloration properties. Journal of Xi'an University of Technology, 38, 1-6, 13(2018).

    [66] H Z LI, L MCRAE, A Y ELEZZABI. Solution-processed interfacial PEDOT:PSS assembly into porous tungsten molybdenum oxide nanocomposite films for electrochromic applications. ACS Applied Materials & Interfaces, 10, 10520-10527(2018).

    [67] W Q WANG, X L WANG, X H XIA et al. Enhanced electrochromic and energy storage performance in mesoporous WO3 film and its application in a bi-functional smart window. Nanoscale, 10, 8162-8169(2018).

    [68] J M WANG, L ZHANG, L YU et al. A bi-functional device for self-powered electrochromic window and self-rechargeable transparent battery application. Nature Communications, 5, 4921(2014).

    [69] S CONG, Y TIAN, Q W LI et al. Single-crystalline tungsten oxide quantum dots for fast pseudocapacitor and electrochromic applications. Advanced Materials, 26, 4260-4267(2014).

    [70] H Z LI, L MCRAE, C J FIRBY et al. Nanohybridization of molybdenum oxide with tungsten molybdenum oxide nanowires for solution-processed fully reversible switching of energy storing smart windows. Nano Energy, 47, 130-139(2018).

    [71] B YANG, D Y MA, E M ZHENG et al. A self-rechargeable electrochromic battery based on electrodeposited polypyrrole film. Solar Energy Materials and Solar Cells, 192, 1-7(2019).

    Jinmin WANG, Lijun HOU, Dongyun MA. Molybdenum Oxide Electrochromic Materials and Devices[J]. Journal of Inorganic Materials, 2021, 36(5): 461
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