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用于电致变色进展的氧化铌薄膜中温度诱导改性的相互作用。

Interplay of Temperature-Induced Modification in Niobium Oxide Thin Films for Electrochromic Advancements.

作者信息

Amate Rutuja U, Morankar Pritam J, Ahir Namita A, Jeon Chan-Wook

机构信息

School of Chemical Engineering, Yeungnam University, 280 Daehak-ro, Gyeongsan 712-749, Republic of Korea.

出版信息

Materials (Basel). 2025 Mar 13;18(6):1264. doi: 10.3390/ma18061264.

DOI:10.3390/ma18061264
PMID:40141547
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11943907/
Abstract

Niobium oxide (NbO) is a compelling preference for electrochromic (EC) applications due to its remarkable optical modulation, chemical resilience, and efficient charge accommodation. This study attentively explores the influence of reaction temperature on the structural, morphological, and EC characteristics of NbO thin films synthesized via a hydrothermal approach. Reaction temperatures spanning 140 °C to 200 °C were optimized to unravel their pivotal role in dictating material properties and device performance. Field-emission scanning electron microscopy elucidates significant morphological transformations, transitioning from agglomerated, cracked structures at lower temperatures to well-defined, porous architectures at optimal conditions, followed by a re-compaction of the surface at elevated temperatures. Electrochemical analysis established a strong correlation between thermal-induced structural refinements and enhanced EC performance metrics. The optimized N-180 thin films exhibit enhanced charge injection dynamics, improved coloration efficiency of 81.33 cm/C, and superior optical modulation of 74.13% at 600 nm. The device fabricated with the most favorable film demonstrated significant optical contrast and long-term stability, reinforcing its practical viability for smart window and energy-efficient applications. This study pioneers a comprehensive understanding of the thermal modulation of NbO thin films, providing new insights into the interplay between reaction temperature and material functionality.

摘要

氧化铌(NbO)因其卓越的光学调制性能、化学稳定性和高效的电荷容纳能力,成为电致变色(EC)应用的理想选择。本研究深入探讨了反应温度对通过水热法合成的NbO薄膜的结构、形态和电致变色特性的影响。对140℃至200℃的反应温度进行了优化,以揭示其在决定材料性能和器件性能方面的关键作用。场发射扫描电子显微镜揭示了显著的形态转变,从低温下的团聚、开裂结构转变为最佳条件下的清晰、多孔结构,随后在高温下表面重新压实。电化学分析表明,热诱导的结构优化与增强的电致变色性能指标之间存在密切关联。优化后的N-180薄膜表现出增强的电荷注入动力学,在600nm处的着色效率提高到81.33cm/C,光学调制率达到74.13%。用最有利的薄膜制造的器件表现出显著的光学对比度和长期稳定性,增强了其在智能窗和节能应用中的实际可行性。本研究率先全面了解了NbO薄膜的热调制,为反应温度与材料功能之间的相互作用提供了新的见解。

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本文引用的文献

1
T-NbO nanoparticle enabled pseudocapacitance with fast Li-ion intercalation.T-NbO 纳米颗粒实现了赝电容,具有快速的锂离子嵌入。
Nanoscale. 2018 Aug 7;10(29):14165-14170. doi: 10.1039/c8nr03495h. Epub 2018 Jul 16.
2
T-NbO quantum dots prepared by electrodeposition for fast Li ion intercalation/deintercalation.通过电沉积制备的 T-NbO 量子点,用于快速锂离子的嵌入/脱嵌。
Nanotechnology. 2017 May 26;28(21):215401. doi: 10.1088/1361-6528/aa6b8b. Epub 2017 Apr 5.
3
Eliminating degradation and uncovering ion-trapping dynamics in electrochromic WO3 thin films.
消除电致变色WO₃薄膜中的降解并揭示离子俘获动力学。
Nat Mater. 2015 Oct;14(10):996-1001. doi: 10.1038/nmat4368. Epub 2015 Aug 10.