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A highly parallel picoliter dispenser with an integrated, novel capillary channel structure

机译:高度平行的皮升分配器,具有集成的新型毛细管通道结构

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We present a cross-contamination free highly-parallel picoliter dispenser based on direct liquid displacement. Such dispensers are essential for the (mass) fabrication of microarrays [J. Ducree, H. Gruhler, N. Hey, M. Mueller, S. Bekesi, M. Freygang, H. Sandmaier, R. Zengerle, TopSpot-a new method for the fabrication of microarrays, Tech. Digest, The Thirteenth IEEE Annual International Conference on Micro Electro Mechanical Systems, Mizyazaki, Japan, 23-27 January 2000, pp. 317-322] and are able to dispense up to 384 different reagents at a pitch of 500 mum simultaneously [A. Kuoni, M. Boillat, N.F. de Rooij, A highly parallel piezoelectric printing device for microarray technology, Tech. Digest, The 17th International Conference on Micro Electro, Mechanical Systems, Maastricht, The Netherlands, 25-29 January 2004, pp. 466-469]. In contrast to an earlier design [Sens. Actuators A 103 (2003) 88] we investigated different nozzle diameters and a novel capillary channel design. We present a systematic study concerning the relation between nozzle diameter and ejected droplet volume. The change from 35 to 60 mum in nozzle diameter resulted in a doubling of dispensed volume for most used elastomers and irrespective of actuation parameters. Minimum and maximum dispensed volumes have been determined to be 125 and 1700 pl. Those results are based on a new design, which also includes passive microstructures for droplet homogeneity as well as modified microchannels for improved priming and prevention of cross-contamination. Based on this, the coefficient of variation (CV) of droplet velocity could be reduced from 50% down to less than 5%. The CV of droplet volume is clearly below the measurement error (8%). (C) 2004 Elsevier B.V. All rights reserved.
机译:我们提出了一种基于直接液体置换的无交叉污染的高度平行的皮升分配器。这样的分配器对于微阵列的(批量)制造是必不可少的[J. Ducree,H.Gruhler,N.He,M.Mueller,S.Bekesi,M.Freygang,H.Sandmaier,R.Zengerle,TopSpot-一种制造微阵列的新方法,技术Digest,第十三届IEEE年度微电子机械系统国际会议,日本Mizyazaki,2000年1月23日至27日,第317-322页],并且能够以500 mum的间距同时分配多达384种不同的试剂[A. N.F.库尼(M. Boillat) de Rooij,一种用于微阵列技术的高度平行的压电印刷设备,Tech。摘要,第17届微电子,机械系统国际会议,荷兰马斯特里赫特,2004年1月25-29日,第466-469页]。与早期的设计相反[Sens。致动器A 103(2003)88],我们研究了不同的喷嘴直径和新颖的毛细管通道设计。我们对喷嘴直径和喷射液滴量之间的关系进行了系统的研究。喷嘴直径从35微米变为60毫米,导致大多数使用的弹性体的分配体积增加了一倍,并且与驱动参数无关。最小和最大分配量已确定为125和1700 pl。这些结果基于新设计,该设计还包括用于液滴均匀性的无源微结构以及用于改善引发和防止交叉污染的改良微通道。基于此,液滴速度的变异系数(CV)可以从50%降低到小于5%。液滴体积的CV明显低于测量误差(8%)。 (C)2004 Elsevier B.V.保留所有权利。

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