Bifunctional photoactive nanomaterials for sustainable paper-based photobatteries: powering point-of-care medical biosensors

IF 4.1 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Natasha Ross, Kayode Adesina Adegoke and Mieke Adriaens
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Abstract

Most of the point-of-care (POC) POC diagnostics systems require a fluid manipulation that can be controlled by microfluidic components, such as micropumps, microvalves, and micro-separators, among others. These microfluidic components require significant external energy to apply external forces. Hence, the lack of reliable and sustainable power sources impedes the widespread adoption of these devices. Since the 1970s, photobatteries have been the subject of scientific inquiry with a resurgence in recent years, catalysing the creation of diverse photobattery designs. Among these, paper-based systems have emerged as a particularly promising avenue, offering a potential solution to mitigate the environmental footprint of disposable energy storage devices. Their performance and longevity, however, are heavily dependent on the photoactive battery electrode materials and architectures employed. This comprehensive review article examines the cutting-edge research on bifunctional nanomaterials optimally suited for paper-based lithium-ion photobatteries. The focus is primarily on two-electrode configurations where a single electrode integrates both light harvesting and energy storage capabilities. Such a design is particularly advantageous for electrochemical point-of-care (POC) medical sensors, offering a compact and efficient energy solution. The work highlights the unique requirements and challenges associated with these systems and provides a comprehensive overview of potential photoactive materials. It critically evaluates their performance metrics, such as specific energy, power density, safety, and environmental impact, in the context of solar-powered POC medical sensor applications. Successful case studies and real-world applications are discussed, showcasing their potential to improve healthcare accessibility and quality, particularly in underserved and resource-constrained communities. This review underscores the transformative potential of nanostructure photobatteries and beckons researchers to partake in shaping this new field.

Abstract Image

用于可持续纸基光电池的双功能光活性纳米材料:为护理点医学生物传感器供电
大多数护理点(POC) POC诊断系统需要流体操作,可以由微流体组件控制,如微泵,微阀和微分离器等。这些微流控元件需要大量的外部能量来施加外力。因此,缺乏可靠和可持续的电源阻碍了这些设备的广泛采用。自20世纪70年代以来,光电池一直是科学研究的主题,近年来又重新兴起,促进了各种光电池设计的创造。其中,基于纸张的系统已经成为一个特别有前途的途径,为减轻一次性能源存储设备的环境足迹提供了一个潜在的解决方案。然而,它们的性能和寿命在很大程度上取决于所采用的光活性电池电极材料和结构。本文综述了双功能纳米材料最适合纸质锂离子光电池的最新研究进展。焦点主要集中在双电极配置上,其中单个电极集成了光收集和能量存储功能。这种设计对于电化学护理点(POC)医疗传感器特别有利,提供了紧凑高效的能源解决方案。这项工作强调了与这些系统相关的独特要求和挑战,并提供了潜在光活性材料的全面概述。它严格评估了它们的性能指标,如比能量、功率密度、安全性和环境影响,在太阳能POC医疗传感器应用的背景下。讨论了成功的案例研究和实际应用,展示了它们在改善医疗保健可及性和质量方面的潜力,特别是在服务不足和资源有限的社区。这篇综述强调了纳米结构光电池的变革潜力,并号召研究人员参与塑造这一新领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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