The Role of Molecularly Imprinted Polymers In Sensor Technology: Electrochemical, Optical and Piezoelectric Sensor Applications

Hilmiye Deniz ERTUĞRUL UYGUN, Münire Nalan DEMİR
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Abstract

With the help of molecular imprinting technology, artificial receptors can be made and used for identification. This technique's limitless application increases polymer technology and makes it adaptable to other technologies. In this study, examples of sensor applications are used to explain molecular imprinting technology (MIT) and its brief history. MIT can be used to create polymer-based artificial receptors with remarkable selectivity and affinity to detect any target molecules that can be imprinted on a polymer. A monomer is synthesized around a template molecule to create a selective cavity that serves as an artificial receptor. Molecularly imprinted polymers (MIP) offer a wide range of uses and have recently garnered much attention. These polymers' production methods, production kinds, and molecular imprinting techniques are all thoroughly detailed. The outstanding properties of MIPs make a crucial contribution to sensor applications offering selective, fast, easy, and cost-effective analysis, which became very popular after Clark published his first biosensor study. Apart from the biological recognition receptors, MIPs have the advantage that they are not affected by physical conditions of the environment, such as temperature, pH, and ion strength. To overcome the biological recognition receptors' disadvantages, molecularly imprinted polymers can be used for sensor development. From the point of view of the review, the combination of MIPs and sensors was explained and proposed as an informative paper.
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分子印迹聚合物在传感器技术中的作用:电化学、光学和压电传感器的应用
在分子印迹技术的帮助下,可以制备人工受体并用于鉴定。这项技术的无限应用增加了聚合物技术,使其适应于其他技术。在本研究中,用传感器应用的例子来解释分子印迹技术(MIT)及其简史。MIT可以用来制造基于聚合物的人工受体,具有显著的选择性和亲和力,可以检测任何可以印在聚合物上的目标分子。在模板分子周围合成一个单体,形成一个选择性的空腔,作为人工受体。分子印迹聚合物(MIP)具有广泛的用途,近年来引起了人们的广泛关注。这些聚合物的生产方法、生产种类和分子印迹技术都进行了详细的介绍。MIPs的杰出特性为传感器应用做出了重要贡献,提供了选择性、快速、简单和具有成本效益的分析,在Clark发表了他的第一篇生物传感器研究之后,这种分析变得非常流行。除了生物识别受体外,MIPs的优点是不受环境物理条件(如温度、pH值和离子强度)的影响。为了克服生物识别受体的缺点,分子印迹聚合物可以用于传感器的开发。从综述的角度出发,对MIPs和传感器的结合进行了解释,并提出了一篇翔实的论文。
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来源期刊
CiteScore
1.60
自引率
0.00%
发文量
81
审稿时长
5 weeks
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