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离子插入序列和腔特性诱导的六方WO的可见-近红外独立调制

Visible-Near Infrared Independent Modulation of Hexagonal WO Induced by Ionic Insertion Sequence and Cavity Characteristics.

作者信息

Wang Junkai, Wang Zhipeng, Cui Lixuan, Zhang Mei, Huo Xiangtao, Guo Min

机构信息

State Key Laboratory of Advanced Metallurgy, School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing, 10083, P. R. China.

出版信息

Adv Mater. 2024 Nov;36(45):e2406939. doi: 10.1002/adma.202406939. Epub 2024 Sep 18.

Abstract

Dual-band electrochromic materials have attracted significant attention due to their ability to independently control sunlight and solar heat. However, these materials generally exhibit notable limitations, and the mechanisms for their dual-band independent regulation remain poorly understood. Here, the visible-NIR-independent regulation capabilities of hexagonal WO (h-WO) are introduced for the first time. A structure-activity relationship that perfectly links the microscopic ion insertion sequence and cavity characteristics to the macroscopic dual-band electrochromic properties is established. The progressive ion intercalation process and the distinctive optical activity of the cavities are keys for enabling h-WO to independently modulate "bright," "cool," and "dark" modes. Notably, h-WO demonstrates superior dual-band electrochromic performance with a broadband full shielding effect from 550 to 2000 nm, achieving the widest full shielding band in dual-band electrochromic studies. Additionally, h-WO shows a high discharge capacity of 270.9 mAh m at 0.25 A m , and requires only 49.1 and 209.7 mAh m to complete a full round-trip switch between "bright-cool" and "bright-dark" modes, respectively. The constructed device offers a dynamic temperature control range of up to 10.5 °C and supports a maximum voltage of 2.86 V, underscoring its considerable potential for practical applications and energy efficiency.

摘要

双波段电致变色材料因其能够独立控制阳光和太阳热量而备受关注。然而,这些材料通常存在显著局限性,其双波段独立调节机制仍知之甚少。在此,首次介绍了六方WO(h-WO)的可见光-近红外独立调节能力。建立了一种结构-活性关系,将微观离子插入序列和空腔特性与宏观双波段电致变色性能完美联系起来。渐进式离子嵌入过程和空腔独特的光学活性是使h-WO能够独立调节“明亮”、“凉爽”和“黑暗”模式的关键。值得注意的是,h-WO展现出卓越的双波段电致变色性能,在550至2000 nm范围内具有宽带全屏蔽效应,在双波段电致变色研究中实现了最宽的全屏蔽波段。此外,h-WO在0.25 A m 时显示出270.9 mAh m 的高放电容量,分别仅需49.1和209.7 mAh m 即可在“明亮-凉爽”和“明亮-黑暗”模式之间完成一次完整的往返切换。所构建的器件提供高达10.5 °C的动态温度控制范围,并支持2.86 V的最大电压,突显了其在实际应用和能源效率方面的巨大潜力。

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