• Journal of Inorganic Materials
  • Vol. 39, Issue 12, 1391 (2024)
Xingzhe FENG, Dongyun MA*, and Jinmin WANG*
Author Affiliations
  • School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai 200093, China
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    DOI: 10.15541/jim20240137 Cite this Article
    Xingzhe FENG, Dongyun MA, Jinmin WANG. Porous NiMn-LDH Nanosheets Film: Solvothermal Growth and Electrochromic Properties[J]. Journal of Inorganic Materials, 2024, 39(12): 1391 Copy Citation Text show less
    References

    [1] J L WANG, S Z SHENG, Z HE et al. Self-powered flexible electrochromic smart window. Nano Letters, 21, 9976(2021).

    [2] D Y MA, A L S EH, S CAO et al. Wide-spectrum modulated electrochromic smart windows based on MnO2/PB films. ACS Applied Materials and Interfaces, 14, 1443(2022).

    [3] G F CAI, J X WANG, P S LEE. Next-generation multifunctional electrochromic devices. Accounts of Chemical Research, 49, 1469(2016).

    [4] K L ZHOU, H WANG, Q Q ZHANG et al. Dynamic process of ions transport and cyclic stability of WO3electrochromic film. Journal of Inorganic Materials, 36, 152(2021).

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

    [6] Y TUTEL, M B DURUKAN, S O HACIOGLU et al. Cobalt-doped MoO3 thin films and dual-band electrochromic devices with excellent cyclic stability. Applied Materials Today, 101924(2023).

    [7] G GAO, X J TAO, Y HE et al. Electrochromic composites films composed of MoO3 doped by tungsten atoms with remarkable response speed and color rendering efficiency via electrochemical deposition. Applied Surface Science, 640, 158346(2023).

    [8] 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(2019).

    [9] F HU, B YAN, G SUN et al. Conductive polymer nanotubes for electrochromic applications. ACS Applied Nano Materials, 2, 3154(2019).

    [10] X J FANG, C W WANG, Q Y TIAN et al. Based on triphenylamine-imidazole skeleton electro-fluorochromic small organic molecules: synthesis and electrofluorochromic properties. Materials Letters, 333, 133659(2023).

    [11] M J QIU, F W ZHOU, P SUN et al. Unveiling the electrochromic mechanism of Prussian blue by electronic transition analysis. Nano Energy, 105148(2020).

    [12] Q MA, J X CHEN, H ZHANG et al. Dual-function self-powered electrochromic batteries with energy storage and display enabled by potential difference. ACS Energy Letters, 8, 306(2022).

    [13] T K RAO, Y L ZHOU, J JIANG et al. Low dimensional transition metal oxide towards advanced electrochromic devices. Nano Energy, 107479(2022).

    [14] J J GUO, M WANG, G B DONG et al. Mechanistic insights into the coloration, evolution, and degradation of NiOx electrochromic anodes. Inorganic Chemistry, 57, 8874(2018).

    [15] S KANDPAL, L BANSAL, A GHANGHASS et al. Bifunctional solid state electrochromic device using WO3/WS2 nanoflakes for charge storage and dual-band color modulation. Journal of Materials Chemistry C, 11, 12590(2023).

    [16] D M DONG, H DJAOUED, G VIENNEAU et al. Electrochromic and colorimetric properties of anodic NiO thin films: uncovering electrochromic mechanism of NiO. Electrochimica Acta, 335, 35648(2020).

    [17] H YANG, J H YU, H J SEO et al. Improved electrochromic properties of nanoporous NiO film by NiO flake with thickness controlled by aluminum. Applied Surface Science, 461, 88(2018).

    [18] M H TIAN, X Q LIU, X G DIAO et al. High performance PANI/MnO2 coral-like nanocomposite anode for flexible and robust electrochromic energy storage device. Solar Energy Materials and Solar Cells, 112239(2023).

    [19] S M WANG, Y H JIN, T WANG et al. Polyoxometalate-MnO2 film structure with bifunctional electrochromic and energy storage properties. Journal of Materiomics, 9, 269(2023).

    [20] J HU, X M TANG, Q DAI et al. Layered double hydroxide membrane with high hydroxide conductivity and ion selectivity for energy storage device. Nature Communications, 12, 3409(2021).

    [21] J KUMAR, R R NEIBER, Z ABBAS et al. Hierarchical NiMn- LDH hollow spheres as a promising pseudocapacitive electrode for supercapacitor application. Micromachines, 14, 482(2023).

    [22] X L GUO, X Y LIU, X D HAO et al. Nickel-manganese layered double hydroxide nanosheets supported on nickel foam for high- performance supercapacitor electrode materials. Electrochimica Acta, 194, 179(2016).

    [23] Y Q TANG, H M SHEN, J Q CHENG et al. Fabrication of oxygen-vacancy abundant NiMn-layered double hydroxides for ultrahigh capacity supercapacitors. Advanced Functional Materials, 30, 1908223(2020).

    [24] M M BAIG, I H GUL, R AHMAD et al. One-step sonochemical synthesis of NiMn-LDH for supercapacitors and overall water splitting. Journal of Materials Science, 56, 18636(2021).

    [25] M M BAIG, M T MEHRAN, R KHAN et al. Direct chemical synthesis of interlaced NiMn-LDH nanosheets on LSTN perovskite decorated Ni foam for high-performance supercapacitors. Surface and Coatings Technology, 421, 127455(2021).

    [26] B ZHANG, Y YANG, J L CAI et al. Mg doping of NiMn-LDH with a three-dimensional porous morphology for an efficient supercapacitor. Dalton Transactions, 52, 10557(2023).

    [27] J W SUN, X Y WAN, T YANG et al. Preparation and electrochromic properties of Ti2Nb10O29films. Journal of Inorganic Materials, 38, 1434(2023).

    [28] E MURUGAN, S GOVINDARAJU, S SANTHOSHKUMAR. Hydrothermal synthesis, characterization and electrochemical behavior of NiMoO4 nanoflower and NiMoO4/rGO nanocomposite for high-performance supercapacitors. Electrochimica Acta, 392, 138973(2021).

    [29] H B NIU, J H HUANG, Q W LI et al. Directly hydrothermal growth and electrochromic properties of porous NiMoO4 nanosheet films. Journal of Inorganic Materials, 38, 1427(2023).

    [30] Y REN, X G ZHOU, H ZHANG et al. Preparation of a porous NiO array-patterned film and its enhanced electrochromic performance. Journal of Materials Chemistry C, 6, 4952(2018).

    [31] L L ZHAO, Z M CHEN, Y Q PENG et al. High-performance complementary electrochromic energy storage device based on tungsten trioxide and manganese dioxide films. Sustainable Materials and Technologies, e00445(2022).

    [32] D ZHOU, B Y CHE, X H LU. Rapid one-pot electrodeposition of polyaniline/manganese dioxide hybrids: a facile approach to stable high-performance anodic electrochromic materials. Journal of Materials Chemistry C, 5, 1758(2017).

    [33] H S CHAVAN, B HOU, Y JO et al. Optimal rule-of-thumb design of nickel-vanadium oxides as an electrochromic electrode with ultrahigh capacity and ultrafast color tunability. ACS Applied Materials and Interfaces, 13, 57403(2021).

    Xingzhe FENG, Dongyun MA, Jinmin WANG. Porous NiMn-LDH Nanosheets Film: Solvothermal Growth and Electrochromic Properties[J]. Journal of Inorganic Materials, 2024, 39(12): 1391
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