Roy Rahuldeb, Greeshma R, Dutta Pritha, Mondal Indrajit, Banerjee Rudra, Singh Ashutosh K
Centre for Nano and Soft Matter Sciences, Bangalore, Karnataka 562162, India.
Manipal Academy of Higher Education, Manipal, Karnataka 576104, India.
ACS Appl Mater Interfaces. 2024 Jul 31;16(30):39539-39550. doi: 10.1021/acsami.4c04445. Epub 2024 Jul 20.
Aqueous electrochromic batteries (ECBs) have recently garnered significant attention within the realm of renewable rechargeable technology due to their potential applicability in diverse multifunctional devices featuring visible-level indicator batteries. However, there exists an imperative to comprehend the underlying structural factors that contribute to achieving an elevated electrochemical performance. In this context, we have synthesized and compared WO·HO (HWO) specifically for heightened ECB application as against the performance of a standard anhydrous WO (AWO). To unravel the underlying cause, a density functional theory (DFT) investigation is carried out, disclosing a structural deformation of HWO, unlike AWO, due to Jahn-Teller distortion induced by the presence of interlayer water. It results in a fully compatible HWO ion host to devise a zinc-ion aqueous electrolyte electrochromic battery, exhibiting superior redox reactivity, optical modulation (50%), capacity (200 mAh/m), and cyclic stability. To glean insights into the dynamic structural alterations during the intercalation and deintercalation processes of Zn, ex situ X-ray diffraction and Raman spectroscopic studies are carried out. These investigations culminate in the determination that HWO films are better suited for the application than their AWO counterparts. This finding holds promise for advancing the applications of ECBs and represents a significant step forward in this field.
水系电致变色电池(ECBs)由于其在具有可见级指示电池的各种多功能设备中的潜在适用性,最近在可再生可充电技术领域引起了广泛关注。然而,必须了解有助于实现更高电化学性能的潜在结构因素。在此背景下,我们合成并比较了WO·HO(HWO),专门用于增强ECB应用,并与标准无水WO(AWO)的性能进行对比。为了揭示其根本原因,进行了密度泛函理论(DFT)研究,结果表明,与AWO不同,由于层间水的存在引起的 Jahn-Teller 畸变,HWO发生了结构变形。这使得HWO成为一种完全兼容的离子主体,可用于设计锌离子水系电解质电致变色电池,该电池表现出优异的氧化还原反应活性、光学调制(50%)、容量(200 mAh/m)和循环稳定性。为了深入了解锌嵌入和脱嵌过程中的动态结构变化,进行了非原位X射线衍射和拉曼光谱研究。这些研究最终确定,HWO薄膜比AWO薄膜更适合该应用。这一发现为推进ECBs的应用带来了希望,代表了该领域向前迈出的重要一步。