Fabrication of a hybrid microfluidic system incorporating both lithographically patterned microchannels and a 3D fiber-formed microfluidic network.

Fabrication of a hybrid microfluidic system incorporating both lithographically patterned microchannels and a 3D fiber-formed microfluidic network.
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DOI:
10.1002/adhm.201100052
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发表时间:
2012-03
影响因子:
10
通讯作者:
Borenstein, Jeffrey T.
Borenstein, Jeffrey T.
中科院分区:
工程技术1区
文献类型:
--
作者:
Bellan, Leon M.;Kniazeva, Tatiana;Kim, Ernest S.;Epshteyn, Alla A.;Cropek, Donald M.;Langer, Robert;Borenstein, Jeffrey T.

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While fabrication of two-dimensional microfluidic systems has become a standardized, straightforward process, fabrication of true three dimensional microfluidic systems remains extremely challenging. There is an increasing demand, however, for three dimensional microfluidic architectures, particularly for tissue engineering applications, and several techniques have been developed to address this need. These techniques range from using complex techniques, such as solid freeform fabrication,[1]–[3] to simpler approaches such as weaving [4] or making use of multiple layers of lithographically patterned two dimensional fluidic structures. The multi-layer stacking technique, in which multiple layers of two dimensional microfluidic networks are assembled in a vertical stack with vertical connecting vias, has been adopted because it leverages the high-resolution capabilities of lithographic 2D microfluidics, requires no additional hardware, and is relatively straightforward. This technique has been used to form devices for applications such as organ assist devices,[5][7] microvascular networks and in vitro models in both biocompatible, nondegradable
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