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A composite element bit design for magnetically encoded microcarriers for future combinatorial chemistry applications

机译:用于未来组合化学应用的磁编码微载波的复合元素位设计

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We present a new composite element (CE) bit design for the magnetic bit encoding of suspended microcarriers, which has significant implications for library generation applications based on microfluidic combinatorial chemistry. The CE bit design consists of high aspect ratio strips with appropriate dipolar interactions that enable a large coercivity range and the formation of up to 14 individually addressable bits (16?384 codes) with high encoding reliability. We investigate Ni _(80) Fe _(20) and Co CEs, which produce coercivity ranges of 8–290 Oe and 75–172 Oe, respectively, showing significant improvements to previously proposed bit designs. By maintaining the total magnetic volume for each CE bit, the barcode design enables a consistent stray field for in-flow magnetic read-out. The CE bit design is characterised using magneto-optic Kerr effect (MOKE) measurements and the reliability of the design is demonstrated in a multi-bit encoding process capable of identifying each bit transition for every applied magnetic field pulse. By constraining each magnetic bit to have a unique switching field using the CE design, we enable sequential encoding of the barcode using external magnetic field pulses. We therefore discuss how the new CE barcode design makes magnetically encoded microcarriers more relevant for rapid and non-invasive detection, identification and sorting of compounds in biomolecular libraries, where each microcarrier is for example capable of recording its reaction history in daisy-chained microfluidic split-and-mix processes.
机译:我们介绍了一种用于悬浮微载体的磁比特编码的新的复合元件(CE)位设计,这对基于微流体组合化学的库生成应用具有显着影响。 CE位设计由具有适当的双极交互的高纵横比条组成,其使得具有大的矫顽力范围和最多具有高编码可靠性的可单独寻址的位(16?384代码)的形成。我们研究了NI _(80)FE _(20)和CO CES,它们分别产生8-290 OE和75-172 OE的矫顽力范围,显示出对先前提出的位设计的显着改进。通过保持每个CE位的总磁体积,条形码设计使得用于流动磁读出的一致杂散场。 CE位设计的特征在于使用磁光kerr效果(Moke)测量,并且在能够识别每个应用的磁场脉冲的每个比特转换的多比特编码过程中对设计的可靠性进行了说明。通过使用CE设计约束每个磁位来具有唯一的开关场,我们使用外部磁场脉冲使条形码顺序编码。因此,我们讨论了新的CE条形码设计如何使磁编码的微载体更相关,以更快速和非侵入性检测,鉴定和分类生物分子文库中的化合物,其中每个微载体例如能够在菊花链的微流体分裂中记录其反应史 - 混合过程。

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