面向SPR微流控芯片的温控系统设计与性能分析
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暨南大学物理与光电工程学院 广州 510632

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TN29;TH744

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国家自然科学基金(62175094)项目资助


Design and performance analysis of temperature control system for surface plasmon resonance microfluidic chips
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College of Physics and Optoelectronic Engineering, Jinan University,Guangzhou 510632, China

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    摘要:

    鉴于多通道表面等离子体共振(SPR)传感系统在生物分子相互作用检测过程中对温度控制稳定性的较高要求,本研究设计并实现了一种可分离式局部恒温系统。该系统以半导体制冷片(TEC)为核心执行部件,联合紫铜夹具、数字温控模块、热敏电阻温度传感器以及风冷散热结构,达成对SPR微流控芯片传感区域的局部温度调节。实验结果显示,该系统在15℃~45℃的较宽温度区间内能够实现稳定的温度控制,温度波动幅度小于±0.05℃。经外部恒温补偿优化后,芯片传感区域实际温度与设定值的差值可控制在0.47℃以内。该系统与SPR成像系统集成后,使基线噪声平均降低13.3%。本研究所设计的温控系统具备结构紧凑、可分离、控温精度高等优势,适用于多通道SPR生物传感系统。

    Abstract:

    In view of the high requirements for temperature control stability of multi-channel surface plasmon resonance (SPR) sensing systems in the detection process of biomolecular interactions, this study designs and implements a separable local constant temperature system. Taking the thermoelectric cooler (TEC) as the core executive component, this system combines oxygen-free copper clamps, digital temperature control modules, thermistor temperature sensors and air-cooled heat dissipation structures to realize local temperature regulation of the sensing area of SPR microfluidic chips. The experimental results show that the system can achieve stable temperature control in a wide temperature range from 15℃ to 45℃, and the temperature fluctuation range is less than ±0.05℃. After the optimization of external constant temperature compensation, the difference between the actual temperature and the set value in the chip sensing area can be controlled within 0.47℃. After being integrated with the SPR imaging system, the average baseline noise is reduced by 13.3%. The temperature control system designed in this study has the advantages of compact structure, separable form and high temperature control accuracy, which is suitable for multi-channel SPR biosensing systems.

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易初,袁锦明,梁骏豪,罗云瀚.面向SPR微流控芯片的温控系统设计与性能分析[J].电子测量技术,2026,49(10):243-247

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  • 在线发布日期: 2026-08-25
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