Journal of Inorganic Materials, Volume. 37, Issue 9, 961(2022)
[1] YASHIRO T, OAKADA Y, NAIJOH Y. Novel design for color electrochromic display[J]. International Display Workshops, 42-45(2011).
[5] LI F, MA D, QIAN J et al. One-step hydrothermal growth and electrochromic properties of highly stable Prussian green film and device[J]. Solar Energy Materials and Solar Cells, 103-108(2019).
[6] DYER A L, THOMPSON E J, REYNOLDS J R. Completing the color palette with spray-processable polymer electrochromics[J]. ACS Applied Materials & Interfaces, 1787-1795(2011).
[7] LI K, ZHANG Q, WANG H et al. Red, green, blue (RGB) electrochromic fibers for the new smart color change fabrics[J]. ACS Applied Materials & Interfaces, 13043-13050(2014).
[8] MOON H C, KIM C H, LODGE T P et al. Multicolored, low-power, flexible electrochromic devices based on ion gels[J]. ACS Applied Materials & Interfaces, 6252-6260(2016).
[9] YANG B, MA D, ZHENG E et al. A self-rechargeable electrochromic battery based on electrodeposited polypyrrole film[J]. Solar Energy Materials and Solar Cell, 1-7(2019).
[10] ZHENG R, FAN Y, WANG Y et al. A bifunctional triphenylamine- based electrochromic polymer with excellent self-healing performance[J]. Electrochimica Acta, 296-303(2018).
[12] KIM D S, PARK H, HONG S Y et al. Low power stretchable active-matrix red, green, blue (RGB) electrochromic device array of poly(3-methylthiophene)/Prussian blue[J]. Applied Surface Science, 300-308(2019).
[13] ALESANCO Y, VINUALES A, PALENZUELA J et al. Multicolor electrochromics: rainbow-like devices[J]. ACS Applied Materials & Interfaces, 14795-14801(2016).
[15] ZOU X, WANG Y, TAN Y et al. Achieved RGBY four colors changeable electrochromic pixel by coelectrodeposition of iron hexacyanoferrate and molybdate hexacyanoferrate[J]. ACS Applied Materials & Interfaces, 29432-29442(2020).
[20] LEE K, TANAKA H, TAKAHASHI A et al. Accelerated coloration of electrochromic device with the counter electrode of nanoparticulate Prussian blue-type complexes[J]. Electrochimica Acta, 288-295(2015).
[22] TAKAHASHI A, NOBA K, WATANABE H et al[P]. RSC Advances, 41083-41087(2019).
[23] HONG S, CHEN L. Nano-Prussian blue analogue/PEDOT:PSS composites for electrochromic windows[J]. Solar Energy Materials and Solar Cells, 64-74(2012).
[24] VENTURA M, MULLALIU A, CIURDUC D E et al. Thin layer films of copper hexacyanoferrate: structure identification and analytical applications[J]. Journal of Electroanalytical Chemistry, 10-20(2018).
[26] PEREIRA N M, PEREIRA C M, ARAÚJO J P et al. Zinc electrodeposition from deep eutectic solvent containing organic additives[J]. Journal of Electroanalytical Chemistry, 545-551(2017).
[27] WANG N, WAN H, DUAN J et al. A review of zinc-based battery from alkaline to acid[J]. Materials Today Advances(2021).
[28] HEGNER F S, GALÁN-MASCARÓS J R, LOPEZ N. A database of the structural and electronic properties of Prussian blue, Prussian white, and Berlin green compounds through density functional theory[online]. Inorganic Chemistry, 12851-12862(2016).
[30] LIAO H, LIAO T, CHEN W et al. Molybdate hexacyanoferrate (MoOHCF) thin film: a brownish red Prussian blue analog for electrochromic window application[J]. Solar Energy Materials and Solar Cells, 8-15(2016).
[33] NIU L, CHEN L, ZHANG J et al. Revisiting the open-framework zinc hexacyanoferrate: the role of ternary electrolyte and sodium-ion intercalation mechanism[J]. Journal of Power Sources(2018).
[34] CHEN Y, BI Z, LI X et al. High-coloration efficiency electrochromic device based on novel porous TiO2@Prussian blue core-shell nanostructures[J]. Electrochimica Acta, 534-540(2017).
[35] MAENG H, KIM D, KIM N et al. Synthesis of spherical Prussian blue with high surface area using acid etching[J]. Current Applied Physics(2018).
Get Citation
Copy Citation Text
Jiaqiang ZHANG, Xinlei ZOU, Nengze WANG, Chunyang JIA.
Category: RESEARCH ARTICLE
Received: Nov. 24, 2021
Accepted: --
Published Online: Jan. 12, 2023
The Author Email: Chunyang JIA (cyjia@uestc.edu.cn)