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声子晶体--化学和生化传感器的新平台。

Phoxonic crystals--a new platform for chemical and biochemical sensors.

机构信息

Otto-von-Guericke-University Magdeburg, Institute for Micro and Sensor Systems, Magdeburg, Germany.

出版信息

Anal Bioanal Chem. 2013 Aug;405(20):6497-509. doi: 10.1007/s00216-013-7093-9. Epub 2013 Jun 12.

Abstract

A new sensor platform is based on so-called phoxonic crystals. Phoxonic crystals are structures designed for simultaneous control of photon and phonon propagation and interaction. They are characterized by a periodic spatial modulation of the dielectric constant as well as elastic properties on a common wavelength scale. Multiple scattering of photons and phonons results in a band gap where propagation of both waves is prohibited. The existence of photonic and phononic band gaps opens up opportunities for novel devices and functional materials. The usage of defect modes is an advantageous concept for measurement. The defect also acts as point of measurement. We show theoretically that the properties of the defect mode can be tailored to provide very high sensitivity to optical and acoustic properties of matter confined within a defect cavity or surrounding the defect or being adsorbed at the cavity surface. In this paper, we introduce the sensor platform and analyze the key features of the sensor transduction scheme. Experimental investigations using a macroscopic device support the theoretical findings.

摘要

一种新的传感器平台基于所谓的声子晶体。声子晶体是为同时控制光子和声子的传播和相互作用而设计的结构。它们的特点是介电常数和弹性性质在共同的波长尺度上具有周期性的空间调制。光子和声子的多次散射导致带隙的出现,在带隙中两种波的传播都被禁止。光子带隙和声子带隙的存在为新型器件和功能材料开辟了机会。缺陷模式的使用是测量的一个有利概念。缺陷本身也充当测量点。我们从理论上表明,可以调整缺陷模式的性质,以提供对限制在缺陷腔体内或围绕缺陷或被吸附在腔表面的物质的光学和声学性质的非常高的灵敏度。在本文中,我们介绍了传感器平台,并分析了传感器转换方案的关键特征。使用宏观器件的实验研究支持了理论发现。

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