[1] |
LAU Waichun, CHEN Yali, XIA Ling, XIAO Xiaohua, LI Gongke.
Surface-modified microchip electrophoretic separation and analysis of functional components in health care products
[J]. Chinese Journal of Chromatography, 2023, 41(10): 937-948.
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[2] |
LI Yanqi, WANG Yu, FENG Liang.
Functionalization of carbon dots and their applications in food safety
[J]. Chinese Journal of Chromatography, 2020, 38(7): 732-740.
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[3] |
YUAN Yingxin, FAN Chen, PAN Jianzhang, FANG Qun.
Research advances in clinical biochemical analysis systems based on microfluidic driving and control technique
[J]. Chinese Journal of Chromatography, 2020, 38(2): 183-194.
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[4] |
LIAO Zerong, LI Yongrui, GU Le, LEI Runhong, MIAO Yunfei, LAN Hongying, DENG Yulin, GENG Lina.
Advances in microfluidic chip-based extracellular vesicle separation
[J]. Chinese Journal of Chromatography, 2019, 37(4): 343-347.
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[5] |
REN Ping, LIU Jing, LIN Risheng, LIU Yang, HUANG Meisha, HU Sheng, XU Youchun, LI Caixia.
Construction of a microfluidic chip-based 72 plex single nucleotide polymorphisms ancestry inference system
[J]. Chinese Journal of Chromatography, 2018, 36(7): 599-607.
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[6] |
XU Fangmin, LI Haibo, WEI Wanli, LIU Lingyun, LI Qiang.
Solvent with switchable hydrophilicity used in liquid-liquid microextraction combined with gas chromatography-mass spectrometry for the determination of diclazepam in urine
[J]. Chinese Journal of Chromatography, 2018, 36(10): 1067-1072.
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[7] |
SHI Yang, SHENG Kun, ZHANG Min, LI Hongjing, QIN Jianhua.
Effects of combined the fluid shear stress and tumor necrosis factor-α on cartilage phenotype in a dynamic microfluidic chip
[J]. Chinese Journal of Chromatography, 2017, 35(4): 458-465.
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[8] |
WU Wenshuai, DING Xiong, MU Ying.
A picoliter microfluidic chip driven by negative pressure for quantifying nucleic acid accurately with isothermal amplification
[J]. Chinese Journal of Chromatography, 2017, 35(3): 351-356.
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[9] |
BAO James Jianmin, WANG Dandan, LI Youxin.
Application advances of microfluidic chips for sorting circulating tumor cells in clinical samples
[J]. Chinese Journal of Chromatography, 2017, 35(1): 129-137.
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[10] |
LIU Jia, LIU Zhen.
Recent advances in single cell analysis technologies
[J]. Chinese Journal of Chromatography, 2016, 34(12): 1154-1160.
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[11] |
YAN Wei, XU Deshun, ZHA Yunfeng, WU Xiaofang.
Detection of microenvironment acidification in breast cancer cells by microfluidic chips
[J]. Chinese Journal of Chromatography, 2016, 34(11): 1043-1047.
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[12] |
CHEN Jie1, DING Guosheng2, YUE Chunyue1, TANG Anna1*.
New technique for nanoparticle capillary electrophoresis/microfluidic chip and its uses in enantioselective separation
[J]. Chinese Journal of Chromatography, 2012, 30(01): 3-7.
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[13] |
MA Jingyun, JIANG Lei, QIN Jianhua*.
Synthesis of hollow titania microspheres by using microfluidic droplet-template
[J]. Chinese Journal of Chromatography, 2011, 29(09): 890-895.
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[14] |
YE Linquan, WU Qingshi, DAI Simin, XIAO Zhiliang, ZHANG Bo*.
Development of a droplet-interfaced high performance liquid chromatography-capillary electrophoresis two dimensional separation platform
[J]. Chinese Journal of Chromatography, 2011, 29(09): 857-861.
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[15] |
LIN Jin-Ming.
Recent development of microfluidic diagnostic technologies
[J]. Chinese Journal of Chromatography, 2011, 29(04): 284-292.
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