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Featured researches published by Xixiang Zhang.


RSC Advances | 2011

Patterning cell using Si-stencil for high-throughput assay

Jinbo Wu; Mengying Zhang; Longqing Chen; Vivian C. Yu; Joseph Tin-Yum Wong; Xixiang Zhang; Jianhua Qin; Weijia Wen

In this communication, we report a newly developed cell pattering methodology by a silicon-based stencil, which exhibited advantages such as easy handling, reusability, hydrophilic surface and mature fabrication technologies. Cell arrays obtained by this method were used to investigate cell growth under a temperature gradient, which demonstrated the possibility of studying cell behavior in a high-throughput assay.


Angewandte Chemie | 2017

Bio‐Inspired Carbon Monoxide Sensors with Voltage‐Activated Sensitivity

Suchol Savagatrup; Vera Schroeder; Xin He; Sibo Lin; Maggie He; Omar Yassine; Khaled N. Salama; Xixiang Zhang; Timothy M. Swager

Carbon monoxide (CO) outcompetes oxygen when binding to the iron center of hemeproteins, leading to a reduction in blood oxygen level and acute poisoning. Harvesting the strong specific interaction between CO and the iron porphyrin provides a highly selective and customizable sensor. We report the development of chemiresistive sensors with voltage-activated sensitivity for the detection of CO comprising iron porphyrin and functionalized single-walled carbon nanotubes (F-SWCNTs). Modulation of the gate voltage offers a predicted extra dimension for sensing. Specifically, the sensors show a significant increase in sensitivity toward CO when negative gate voltage is applied. The dosimetric sensors are selective to ppm levels of CO and functional in air. UV/Vis spectroscopy, differential pulse voltammetry, and density functional theory reveal that the in situ reduction of FeIII to FeII enhances the interaction between the F-SWCNTs and CO. Our results illustrate a new mode of sensors wherein redox active recognition units are voltage-activated to give enhanced and highly specific responses.


Analytical Chemistry | 2017

Localized Electrochemiluminescence from Nanoneedle Electrodes for Very-High-Density Electrochemical Sensing

Jingjing Zhang; Junyu Zhou; Chunxiu Tian; Shan Yang; Dechen Jiang; Xixiang Zhang; Hong-Yuan Chen

In this paper, localized electrochemiluminescence (ECL) was visualized from nanoneedle electrodes that achieved very-high-density electrochemical sensing. The localized luminescence at the nanometer-sized tip observed was ascribed to enhanced mass transfer of the luminescence probe at the tip than on the planar surface surrounding the tip, which provided higher luminescence at the tip. The size of the luminescence spots was restricted to 15 μm permitting the electrochemical analysis with a density over 4 × 103 spots/mm2. The positive correlation between the luminescence intensity at the tips and the concentration of hydrogen peroxide supported the quantitative ECL analysis using nanoneedle electrodes. The further modification of glucose oxidase at the electrode surface conceptually demonstrated that the concentration of glucose ranging from 0.5 to 5 mM could be quantified using the luminescence at the tips, which could be further applied for the detection of multiple molecules in the complex biosystem. This successful localized ECL offers a specific strategy for the development of very-high-density electrochemical arrays without the complicated chip design.


SPIE Microtechnologies, Conference on Integrated Photonics - Materials, Devices, and Applications II | 2013

Fano Lineshapes of "Peak-tracking chip" Spatial Profiles Analyzed with Correlation Analysis for Bioarray Imaging and Refractive Index Sensing

Kristelle Bougot-Robin; Shunbo Li; Weisheng Yue; Longqin Chen; Xixiang Zhang; Weijia Wen; Henri Benisty

The asymmetric Fano resonance lineshapes, resulting from interference between background and a resonant scattering, is archetypal in resonant waveguide grating (RWG) reflectivity. Resonant profile shift resulting from a change of refractive index (from fluid medium or biomolecules at the chip surface) is classically used to perform label-free sensing. Lineshapes are sometimes sampled at discretized “detuning” values to relax instrumental demands, the highest reflectivity element giving a coarse resonance estimate. A finer extraction, needed to increase sensor sensitivity, can be obtained using a correlation approach, correlating the sensed signal to a zero-shifted reference signal. Fabrication process is presented leading to discrete Fano profiles. Our findings are illustrated with resonance profiles from silicon nitride RWGs operated at visible wavelengths. We recently demonstrated that direct imaging multi-assay RWGs sensing may be rendered more reliable using “chirped” RWG chips, by varying a RWG structure parameter. Then, the spatial reflectivity profiles of tracks composed of RWGs units with slowly varying filling factor (thus slowly varying resonance condition) are measured under monochromatic conditions. Extracting the resonance location using spatial Fano profiles allows multiplex refractive index based sensing. Discretization and sensitivity are discussed both through simulation and experiment for different filling factor variation, here Δf=0.0222 and Δf=0.0089. This scheme based on a “Peak-tracking chip” demonstrates a new technique for bioarray imaging using a simpler set-up that maintains high performance with cheap lenses, with down to Δn=2×10-5 RIU sensitivity for the highest sampling of Fano lineshapes.


Archive | 2005

Sound attenuating structures

Z. Yang; Weijia Wen; Ping Sheng; Xixiang Zhang


Lab on a Chip | 2015

Design and fabrication of magnetically functionalized flexible micropillar arrays for rapid and controllable microfluidic mixing

Bingpu Zhou; Wei Xu; Ahad Syed; Yeungyeung Chau; Longqing Chen; Basil Chew; Omar Yassine; Xiaoxiao Wu; Yibo Gao; Jingxian Zhang; Xiao Xiao; Juergen Kosel; Xixiang Zhang; Zhaohui Yao; Weijia Wen


Microfluidics and Nanofluidics | 2015

Generation of tunable and pulsatile concentration gradients via microfluidic network

Bingpu Zhou; Wei Xu; Cong Wang; Yeung Yeung Chau; Xiping Zeng; Xixiang Zhang; Rong Shen; Weijia Wen


Microfluidics and Nanofluidics | 2013

High throughput generation and trapping of individual agarose microgel using microfluidic approach

Yang Shi; Xinghua Gao; Longqing Chen; Min Zhang; Jingyun Ma; Xixiang Zhang; Jianhua Qin


Lab on a Chip | 2017

A novel 3-D bio-microfluidic system mimicking in vivo heterogeneous tumour microstructures reveals complex tumour–stroma interactions

Qihui Fan; Ruchuan Liu; Yang Jiao; Chunxiu Tian; James D. Farrell; Wenwen Diao; Xiaochen Wang; Fengrong Zhang; Wei Yuan; Haibo Han; Jinfeng Chen; Yue Yang; Xixiang Zhang; Fangfu Ye; Ming Li; Zhongcan Ouyang; Liyu Liu


Journal of Nanoscience and Nanotechnology | 2012

Fabrication of metallic nanostructures of sub-20 nm with an optimized process of E-beam lithography and lift-off

Weisheng Yue; Zhihong Wang; Xianbin Wang; Longqing Chen; Yang Yang; Basil Chew; Ahad Syed; Ka Chun Wong; Xixiang Zhang

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Weijia Wen

Hong Kong University of Science and Technology

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Longqing Chen

King Abdullah University of Science and Technology

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Ahad Syed

King Abdullah University of Science and Technology

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Basil Chew

King Abdullah University of Science and Technology

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Omar Yassine

King Abdullah University of Science and Technology

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Wei Xu

King Abdullah University of Science and Technology

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Maggie He

Massachusetts Institute of Technology

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Sibo Lin

Massachusetts Institute of Technology

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Timothy M. Swager

Massachusetts Institute of Technology

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