Cutting-Edge Applications of Titanium Dioxide in Biosensors

IF 2.3 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Electroanalysis Pub Date : 2025-09-04 DOI:10.1002/elan.70049
Ehsan Sanattalab, Dilek Kanarya, Aliakbar Ebrahimi, Reza Didarian, Fatma Doğan Güzel, Nimet Yıldırım Tirgil
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引用次数: 0

Abstract

Titanium dioxide (TiO2)-based nanocomposites have attracted increasing attention as functional materials for biosensor applications due to their high surface area, biocompatibility, photocatalytic activity, and electron transfer capabilities. These features significantly enhance the sensitivity, specificity, and stability of biosensors across various platforms. This review presents a comprehensive overview of recent advancements in TiO2-based biosensors, with a focus on three major detection strategies: electrochemical, optical, and electrochemiluminescence (ECL) methods. In the electrochemical domain, TiO2 nanomaterials have been used to develop sensors capable of detecting analytes such as acrylamide with high sensitivity and fast response times. Optical techniques, including surface plasmon resonance (SPR), have used TiO2 nanostructures to improve detection of cancer biomarkers such as hepatocellular carcinoma antigens. ECL-based systems utilizing TiO2 composites show enhanced emission intensity and low detection limits due to improved electron transport properties. Furthermore, the integration of TiO2 with other nanomaterials—such as silver nanoparticles, graphene quantum dots, and titanium-based hybrids—has led to multifunctional sensing platforms with superior analytical performance. This review also discusses the role of TiO2 in detecting clinically relevant targets, including carcinoembryonic antigen (CEA), highlighting its utility in early diagnosis, food safety, and environmental monitoring. TiO2 nanomaterials offer strong potential for next-generation biosensors and point-of-care diagnostic devices due to their versatility, performance, and cost-effectiveness.

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二氧化钛在生物传感器中的前沿应用
二氧化钛(TiO2)基纳米复合材料由于其高表面积、生物相容性、光催化活性和电子转移能力而越来越受到生物传感器功能材料的关注。这些特性显著提高了生物传感器在各种平台上的灵敏度、特异性和稳定性。本文综述了基于tio2的生物传感器的最新进展,重点介绍了三种主要的检测策略:电化学、光学和电化学发光(ECL)方法。在电化学领域,二氧化钛纳米材料已被用于开发能够检测分析物(如丙烯酰胺)的传感器,具有高灵敏度和快速响应时间。光学技术,包括表面等离子体共振(SPR),已经使用TiO2纳米结构来提高肝癌抗原等癌症生物标志物的检测。利用TiO2复合材料的ecl系统由于改善了电子输运性质,显示出增强的发射强度和较低的检测限。此外,TiO2与其他纳米材料(如银纳米粒子、石墨烯量子点和钛基杂化物)的集成,导致了具有优越分析性能的多功能传感平台。本文还讨论了TiO2在检测临床相关靶点(包括癌胚抗原(CEA))中的作用,并强调了其在早期诊断、食品安全和环境监测中的应用。TiO2纳米材料由于其通用性、性能和成本效益,为下一代生物传感器和即时诊断设备提供了强大的潜力。
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来源期刊
Electroanalysis
Electroanalysis 化学-电化学
CiteScore
6.00
自引率
3.30%
发文量
222
审稿时长
2.4 months
期刊介绍: Electroanalysis is an international, peer-reviewed journal covering all branches of electroanalytical chemistry, including both fundamental and application papers as well as reviews dealing with new electrochemical sensors and biosensors, nanobioelectronics devices, analytical voltammetry, potentiometry, new electrochemical detection schemes based on novel nanomaterials, fuel cells and biofuel cells, and important practical applications. Serving as a vital communication link between the research labs and the field, Electroanalysis helps you to quickly adapt the latest innovations into practical clinical, environmental, food analysis, industrial and energy-related applications. Electroanalysis provides the most comprehensive coverage of the field and is the number one source for information on electroanalytical chemistry, electrochemical sensors and biosensors and fuel/biofuel cells.
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