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2022 Journal Article Variable stiffness wires based on magnetorheological liquid metalsZhou, Xiangbo, Shu, Jian, Jin, Hu, Ren, Hongtai, Ma, Gang, Gong, Ning, Ge, Du-an, Shi, Juan, Tang, Shi-Yang, Yun, Guolin, Lu, Hongda, Dong, Shuai, Li, Xiangpeng, Zhang, Shiwu and Li, Weihua (2022). Variable stiffness wires based on magnetorheological liquid metals. International Journal of Smart and Nano Materials, 13 (2), 232-243. doi: 10.1080/19475411.2022.2065703 |
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2021 Journal Article Highly stretchable and sensitive strain sensor based on liquid metal composite for wearable sign language communication deviceZhang, Qingtian, Yun, Guolin, Zhao, Beiliang, Lu, Hongda, Zhang, Shiwu, Tang, Shi-Yang and Li, Weihua (2021). Highly stretchable and sensitive strain sensor based on liquid metal composite for wearable sign language communication device. Smart Materials and Structures, 30 (11) 115005, 115005. doi: 10.1088/1361-665x/ac251a |
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2021 Journal Article Liquid metal hybrid composites with high-sensitivity and large dynamic range enabled by micro- and macrostructure engineeringYun, Guolin, Tang, Shi-Yang, Lu, Hongda, Cole, Tim, Sun, Shuaishuai, Shu, Jian, Zheng, Jiahao, Zhang, Qingtian, Zhang, Shiwu, Dickey, Michael D. and Li, Weihua (2021). Liquid metal hybrid composites with high-sensitivity and large dynamic range enabled by micro- and macrostructure engineering. ACS Applied Polymer Materials, 3 (10), 5302-5315. doi: 10.1021/acsapm.1c01111 |
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2021 Journal Article Hybrid-filler stretchable conductive composites: from fabrication to applicationYun, Guolin, Tang, Shi-Yang, Lu, Hongda, Zhang, Shiwu, Dickey, Michael D. and Li, Weihua (2021). Hybrid-filler stretchable conductive composites: from fabrication to application. Small Science, 1 (6) 2000080. doi: 10.1002/smsc.202000080 |
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2021 Journal Article Modular and self-contained microfluidic analytical platforms enabled by magnetorheological elastomer microactuatorsZhang, Yuxin, Cole, Tim, Yun, Guolin, Li, Yuxing, Zhao, Qianbin, Lu, Hongda, Zheng, Jiahao, Li, Weihua and Tang, Shi-Yang (2021). Modular and self-contained microfluidic analytical platforms enabled by magnetorheological elastomer microactuators. Micromachines, 12 (6) 604, 604. doi: 10.3390/mi12060604 |
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2021 Journal Article Modular off-chip emulsion generator enabled by a revolving needle (vol 20, pg 4592, 2020)Zhang, Yuxin, Zhao, Qianbin, Yuan, Dan, Liu, Hangrui, Yun, Guolin, Lu, Hongda, Li, Ming, Guo, Jinhong, Li, Weihua and Tang, Shi-Yang (2021). Modular off-chip emulsion generator enabled by a revolving needle (vol 20, pg 4592, 2020). Lab on a Chip, 21 (4), 784-784. doi: 10.1039/d1lc90011k |
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2021 Journal Article A semi-active suspension using a magnetorheological damper with nonlinear negative-stiffness componentYang, J., Ning, D., Sun, S. S., Zheng, J., Lu, H., Nakano, M., Zhang, S., Du, H. and Li, W. H. (2021). A semi-active suspension using a magnetorheological damper with nonlinear negative-stiffness component. Mechanical Systems and Signal Processing, 147 107071, 107071. doi: 10.1016/j.ymssp.2020.107071 |
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2020 Journal Article Modular off-chip emulsion generator enabled by a revolving needleZhang, Yuxin, Zhao, Qianbin, Yuan, Dan, Liu, Hangrui, Yun, Guolin, Lu, Hongda, Li, Ming, Guo, Jinhong, Li, Weihua and Tang, Shi-Yang (2020). Modular off-chip emulsion generator enabled by a revolving needle. Lab on a Chip, 20 (24), 4592-4599. doi: 10.1039/d0lc00939c |
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2020 Journal Article Modular and integrated systems for nanoparticle and microparticle synthesis-a reviewLu, Hongda, Tang, Shi-Yang, Yun, Guolin, Li, Haiyue, Zhang, Yuxin, Qiao, Ruirui and Li, Weihua (2020). Modular and integrated systems for nanoparticle and microparticle synthesis-a review. Biosensors, 10 (11) 165, 1-34. doi: 10.3390/bios10110165 |
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2020 Journal Article Liquid metal composites with anisotropic and unconventional piezoconductivityYun, Guolin, Tang, Shi-Yang, Zhao, Qianbin, Zhang, Yuxin, Lu, Hongda, Yuan, Dan, Sun, Shuaishuai, Deng, Lei, Dickey, Michael D. and Li, Weihua (2020). Liquid metal composites with anisotropic and unconventional piezoconductivity. Matter, 3 (3), 824-841. doi: 10.1016/j.matt.2020.05.022 |