材料科学
电致变色
异质结
光电子学
超短脉冲
纳米纤维
多波段设备
纳米技术
电致变色装置
透射率
导电体
光学
电极
复合材料
电信
物理
物理化学
化学
激光器
计算机科学
天线(收音机)
作者
Ya Huang,Baoshun Wang,Xiaojuan Bai,Ying Han,Wenshuo Zhang,Chenhui Zhou,Haibing Meng,Fengxiang Chen,Xueke Wu,Qinyuan Jiang,Run Li,Shiliang Zhang,Xilai Jia,Rufan Zhang
标识
DOI:10.1002/adom.202102399
摘要
Abstract Dual‐band electrochromic (EC) smart windows, which can selectively modulate visible (VIS) and near‐infrared (NIR) light are widely regarded as one of the most attractive options to drastically reduce energy consumption in modern buildings. However, dual‐band EC smart windows still face many challenges such as weak modulation selectivity between VIS and NIR bands, low switching speed, poor durability, and high cost. Here, inspired by pine needles, a unique pine‐needle‐like (PNL) W 18 O 49 /TiO 2 heterostructure is rationally constructed with W 18 O 49 nanothorns (as branches) and TiO 2 nanofibers (as backbones). The PNL‐W 18 O 49 /TiO 2 heterostructures exhibit superior dual‐band EC performance in both VIS and NIR bands, which can block up to 81.4% of the VIS light at 633 nm and 91.3% of NIR at 1800 nm, and they also show extremely short bleaching/coloring time (0.9/1.2 s) and excellent stability (85% of capacity retention after 20 000 cycles) in a narrow potential window of −0.8 to 0.6 V. Besides, abundant patterned EC layers on a fluorine‐doped‐tin‐oxide‐coated conductive glass and flexible polyester conductive films can also be realized. This work provides an effective way for dual‐band EC materials’ design and their further development in smart windows and intelligent displays.
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