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使用聚合物膜、酶和抗体受体作为离子和分子识别元件的金属氧化物纳米传感器。

Metal oxide nanosensors using polymeric membranes, enzymes and antibody receptors as ion and molecular recognition elements.

作者信息

Willander Magnus, Khun Kimleang, Ibupoto Zafar Hussain

机构信息

Department of Science and Technology, Campus Norrköping, Linköping University, Norrköping SE-60174, Sweden.

出版信息

Sensors (Basel). 2014 May 16;14(5):8605-32. doi: 10.3390/s140508605.

Abstract

The concept of recognition and biofunctionality has attracted increasing interest in the fields of chemistry and material sciences. Advances in the field of nanotechnology for the synthesis of desired metal oxide nanostructures have provided a solid platform for the integration of nanoelectronic devices. These nanoelectronics-based devices have the ability to recognize molecular species of living organisms, and they have created the possibility for advanced chemical sensing functionalities with low limits of detection in the nanomolar range. In this review, various metal oxides, such as ZnO-, CuO-, and NiO-based nanosensors, are described using different methods (receptors) of functionalization for molecular and ion recognition. These functionalized metal oxide surfaces with a specific receptor involve either a complex formation between the receptor and the analyte or an electrostatic interaction during the chemical sensing of analytes. Metal oxide nanostructures are considered revolutionary nanomaterials that have a specific surface for the immobilization of biomolecules with much needed orientation, good conformation and enhanced biological activity which further improve the sensing properties of nanosensors. Metal oxide nanostructures are associated with certain unique optical, electrical and molecular characteristics in addition to unique functionalities and surface charge features which shows attractive platforms for interfacing biorecognition elements with effective transducing properties for signal amplification. There is a great opportunity in the near future for metal oxide nanostructure-based miniaturization and the development of engineering sensor devices.

摘要

识别和生物功能性的概念在化学和材料科学领域引起了越来越多的关注。纳米技术领域在合成所需金属氧化物纳米结构方面的进展为纳米电子器件的集成提供了坚实的平台。这些基于纳米电子学的器件有能力识别生物有机体的分子种类,并为在纳摩尔范围内具有低检测限的先进化学传感功能创造了可能性。在这篇综述中,描述了各种金属氧化物,如基于氧化锌、氧化铜和氧化镍的纳米传感器,它们使用不同的功能化方法(受体)来进行分子和离子识别。这些带有特定受体的功能化金属氧化物表面在分析物的化学传感过程中涉及受体与分析物之间的络合物形成或静电相互作用。金属氧化物纳米结构被认为是具有革命性的纳米材料,其具有特定的表面用于固定生物分子,这些生物分子具有所需的取向、良好的构象和增强的生物活性,这进一步提高了纳米传感器的传感性能。除了独特的功能和表面电荷特性外,金属氧化物纳米结构还具有某些独特的光学、电学和分子特性,这些特性为连接具有有效信号放大转导特性的生物识别元件提供了有吸引力的平台。在不久的将来,基于金属氧化物纳米结构的小型化以及工程传感器器件的开发具有很大的机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c70c/4063009/95f728903a57/sensors-14-08605f1.jpg

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