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Scalable synthesis of a biocompatible transparent and superparamagnetic photoresist for microdevice fabrication

机译:用于微器件制造的生物相容性透明和超顺磁性光刻胶的可扩展合成

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摘要

The functionalization of photoresists with colloids has enabled the development of novel active and passive components for microfabricated devices. Incorporation of colloidal particles often results in undesirable reductions in photolithographic fidelity and device transparency. We present a novel photoresist composite incorporating poly(methyl methacrylate-co-methacrylic acid) (PMMA/MMA), the epoxy resin 1002F and colloidal maghemite nanoparticles to produce a stable, transparent and biocompatible photoresist. The composite photoresist was prepared in a scalable fashion in batches up to 1 kg with the particles remaining dispersed during room-temperature storage for at least 6 months. Following photolithography to form films, the nanoparticle size remained well below that of visible-light wavelengths as demonstrated by electron microscopy. Structures fabricated from the photoresist by conventional photolithography displayed aspect ratios greater than ten. When grown on the photoresist, the metabolic rate of HeLa cells was unchanged relative to cells grown on glass. Primary murine mesenchymal stem cells also displayed a normal morphology on the resist surface. The ability to manipulate microstructures formed from the composite was demonstrated by magnetically collecting clonal colonies of HeLa cells from a micropallet array. The transparency, biocompatibility, scalable synthesis and superparamagnetic properties of the novel composite address key limitations of existing magnetic composites.
机译:用胶体对光致抗蚀剂进行功能化使得能够开发用于微细加工设备的新型主动和被动组件。胶体颗粒的掺入常常导致光刻保真度和器件透明度的不期望的降低。我们提出了一种新型的光刻胶复合材料,该复合材料包含聚(甲基丙烯酸甲酯-共-甲基丙烯酸)(PMMA / MMA),环氧树脂1002F和胶体磁赤铁矿纳米颗粒,以产生稳定,透明和生物相容的光刻胶。以可缩放的方式分批制备高达1 kg的复合光刻胶,颗粒在室温下保存至少6个月仍保持分散状态。通过光刻形成膜之后,纳米颗粒尺寸仍远低于可见光波长,如电子显微镜所证明的。通过常规光刻法由光致抗蚀剂制成的结构显示出的纵横比大于十。当在光刻胶上生长时,相对于玻璃上生长的细胞,HeLa细胞的代谢速率没有变化。鼠原代间充质干细胞在抗蚀剂表面也显示出正常的形态。通过从微托盘阵列中磁性收集HeLa细胞的克隆菌落,证明了操作由复合材料形成的微结构的能力。新型复合材料的透明性,生物相容性,可扩展合成和超顺磁性质解决了现有磁性复合材料的关键限制。

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