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光电化学特性与高盐适应性集成在水力发电芯片上,作为一种自供电甲醛监测设备。

Integrating Photoelectrochemical Feature on a Hydrovoltaic Chip with High-Salinity Adaption as a Self-Powered Device for Formaldehyde Monitoring.

机构信息

College of Sciences, Northeastern University, Shenyang 110819, China.

Foshan Graduate School of Innovation, Northeastern University, Foshan 528311, China.

出版信息

ACS Sens. 2024 May 24;9(5):2520-2528. doi: 10.1021/acssensors.4c00240. Epub 2024 May 9.

Abstract

Alternative energy sources are required due to the decline in fossil fuel resources. Therefore, devices that utilize hydrovoltaic technology and light energy have drawn widespread attention because they are emission-free and solar energy is inexhaustible. However, previous investigations mainly focused on accelerating the water evaporation rate at the electrode interface. Here, a cooperative photoelectrochemical effect on a hydrovoltaic chip is achieved using NH-MIL-125-modified TiO nanotube arrays (NTs). This device demonstrated significantly improved evaporation-triggered electricity generation. Under LED illumination, the open-circuit voltage () of the NH-MIL-125/TiONTs active layer of the hydrovoltaic chip was enhanced by 90.3% (up to 400.2 mV). Furthermore, the prepared hydrovoltaic chip showed good high-salinity tolerance, maintaining 74.6% of its performance even in 5 M NaCl. By introducing a Schiff-based reaction between the active layer and formaldehyde, a fully integrated flexible sensor was successfully fabricated for formaldehyde monitoring, and a low limit of detection of 5.2 × 10 M was achieved. This novel strategy for improving the performance of hydrovoltaic devices offers a completely new general approach to construct self-powered devices for point-of-care sensing.

摘要

由于化石燃料资源的减少,需要替代能源。因此,利用水力发电技术和光能的设备引起了广泛关注,因为它们是无排放的,而且太阳能是取之不尽的。然而,以前的研究主要集中在加速电极界面的水蒸发率上。在这里,使用 NH-MIL-125 修饰的 TiO 纳米管阵列 (NTs) 在水力发电芯片上实现了协同光电化学效应。该器件表现出显著提高的蒸发触发发电性能。在 LED 照明下,水力发电芯片的 NH-MIL-125/TiONTs 活性层的开路电压()提高了 90.3%(高达 400.2 mV)。此外,所制备的水力发电芯片表现出良好的耐高盐度性,即使在 5 M NaCl 中仍保持其性能的 74.6%。通过在活性层和甲醛之间引入基于席夫碱的反应,成功制备了用于甲醛监测的完全集成的柔性传感器,实现了低至 5.2×10 M 的检测限。这种提高水力发电设备性能的新策略为构建用于即时护理传感的自供电设备提供了一种全新的通用方法。

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