Department of Mechanical Science and Engineering, University of Illinois Urbana-Champaign, USA.
Lab Chip. 2010 May 7;10(9):1135-41. doi: 10.1039/b923791g. Epub 2010 Mar 12.
This paper presents the design and application of microcantilever heaters for biochemical applications. Thermal lysis of biological cells was demonstrated as a specific example. The microcantilever heaters, fabricated from selectively doped single crystal silicon, provide local resistive heating with highly uniform temperature distribution across the cantilevers. Very importantly, the microcantilever heaters were coated with a layer of 100 nm thick electrically insulating ultrananocrystalline diamond (UNCD) layer used for cell immobilization on the cantilever surface. Fibroblast cells or bacterial cells were immobilized on the UNCD/cantilever surfaces and thermal lysis was demonstrated via optical fluorescence microscopy. Upon electrical heating of the cantilever structures to 93 degrees C for 30 seconds, fibroblast cell and nuclear membrane were compromised and the cells were lysed. Over 90% of viable bacteria were also lysed after 15 seconds of heating at 93 degrees C. This work demonstrates the utility of silicon-UNCD heated microcantilevers for rapid cell lysis and forms the basis for other rapid and localized temperature-regulated microbiological experiments in cantilever-based lab on chip applications.
本文介绍了用于生化应用的微悬臂梁加热器的设计和应用。以生物细胞的热裂解释为例。微悬臂梁加热器由选择性掺杂的单晶硅制成,可在悬臂梁上提供局部电阻加热,并具有高度均匀的温度分布。非常重要的是,微悬臂梁加热器涂覆了一层 100nm 厚的电绝缘的超纳米金刚石(UNCD)层,用于将细胞固定在悬臂梁表面上。成纤维细胞或细菌细胞被固定在 UNCD/悬臂梁表面上,并通过光学荧光显微镜证明了热裂。在将悬臂梁结构加热至 93°C 并保持 30 秒后,成纤维细胞和核膜受损,细胞被裂解。在 93°C 加热 15 秒后,超过 90%的活细菌也被裂解。这项工作证明了硅-UNCD 加热微悬臂梁在快速细胞裂解方面的实用性,并为基于悬臂梁的片上实验室应用中的其他快速和局部温度调节微生物实验奠定了基础。