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Photo-attachment of biomolecules for miniaturization on wicking Si-nanowire platform.


ABSTRACT: We demonstrated the surface functionalization of a highly three-dimensional, superhydrophilic wicking substrate using light to immobilize functional biomolecules for sensor or microarray applications. We showed here that the three-dimensional substrate was compatible with photo-attachment and the performance of functionalization was greatly improved due to both increased surface capacity and reduced substrate reflectivity. In addition, photo-attachment circumvents the problems induced by wicking effect that was typically encountered on superhydrophilic three-dimensional substrates, thus reducing the difficulty of producing miniaturized sites on such substrate. We have investigated various aspects of photo-attachment process on the nanowire substrate, including the role of different buffers, the effect of wavelength as well as how changing probe structure may affect the functionalization process. We demonstrated that substrate fabrication and functionalization can be achieved with processes compatible with microelectronics processes, hence reducing the cost of array fabrication. Such functionalization method coupled with the high capacity surface makes the substrate an ideal candidate for sensor or microarray for sensitive detection of target analytes.

SUBMITTER: Cheng H 

PROVIDER: S-EPMC4331555 | biostudies-literature | 2015

REPOSITORIES: biostudies-literature

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Photo-attachment of biomolecules for miniaturization on wicking Si-nanowire platform.

Cheng He H   Zheng Han H   Wu Jia Xin JX   Xu Wei W   Zhou Lihan L   Leong Kam Chew KC   Fitzgerald Eugene E   Rajagopalan Raj R   Too Heng Phon HP   Choi Wee Kiong WK  

PloS one 20150217 2


We demonstrated the surface functionalization of a highly three-dimensional, superhydrophilic wicking substrate using light to immobilize functional biomolecules for sensor or microarray applications. We showed here that the three-dimensional substrate was compatible with photo-attachment and the performance of functionalization was greatly improved due to both increased surface capacity and reduced substrate reflectivity. In addition, photo-attachment circumvents the problems induced by wicking  ...[more]

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