Zhan, L., Hinnen, H., Gopinathan, K., and Toner, M. Autonomous cryoprotectant loading of the oocyte using microfluidic transistors (2025). Device. [Read]
Guo, Z., Zhan, L., Finger, E., Hays, T., and Toner, M., Bischof, J. Enhanced heat transfer for improved ice-free cryopreservation – Interplay between cooling and rewarming (2024). Annual Review of Heat Transfer. 27, 195-244. [Read]
Zhan, L., Edd, J., Mishra, A., and Toner, M. (2024). Label-free microfluidic apheresis of circulating tumor cell clusters. Advanced Science, 11, 2405853. [Read]
Zhan, L., Han, Z., Shao, Q., Etheridge, M.L., Hays, T., and Bischof, J.C. (2022). Rapid joule heating improves vitrification based cryopreservation. Nature Communications, 13, 6017. [Read]
Zhan, L., Rao, J.S., Sethia, N., Slama, M.Q., Han, Z., Tobolt, D., Etheridge, M., Peterson, Q.P., Dutcher, C.S., Bischof, J.C., Finger, E. (2022). Pancreatic islet cryopreservation by vitrification achieves high viability, function, recovery and clinical scalability for transplantation. Nature Medicine, 28, 798–808. [Read]
Liu, Y., Zhan, L., Kangas, J., Wang, Y., and Bischof, J. (2022). Fast and ultrafast thermal contrast amplification of gold nanoparticle-based immunoassays. Scientific Reports, 12, 12729. [Read]
Kangas, J., Zhan, L., Liu, Y., Natesan, H., Khosla, K., and Bischof, J. (2022). Ultra-rapid laser calorimetry for the assessment of crystallization in low-concentration cryoprotectants. Journal of Heat Transfer, 144. [Read]
Zhan, L., Li, M., Hays, T., and Bischof, J. (2021). Cryopreservation method for Drosophila melanogaster embryos. Nature Communications, 12, 2412. [Read]
Zhan, L., Guo, S.-Z., Kangas, J., Shao, Q., Shiao, M., Khosla, K., Low, W.C., McAlpine, M.C., and Bischof, J. (2021). Conduction cooling and plasmonic heating dramatically increase droplet vitrification volumes for cell cryopreservation. Advanced Science, 8, 2004605. [Read]
Liu, Y., Zhan, L., Wang, Y., Kangas, J., Larkin, D., Boulware, D.R., and Bischof, J.C. (2021). Improved Influenza diagnostics through thermal contrast amplification. Diagnostics, 11, 462. [Read]
Liu, Y., Zhan, L., Shen, J.W., Baro, B., Alemany, A., Sackrison, J., Mitjà, O., and Bischof, J.C. (2021). fM–aM detection of the SARS-CoV-2 antigen by advanced lateral flow immunoassay based on gold nanospheres. ACS Applied Nano Materials, 4, 13826–13837. [Read]
Liu, Y., Zhan, L., Qin, Z., Sackrison, J., and Bischof, J.C. (2021). Ultrasensitive and highly specific lateral flow assays for point-of-care diagnosis. ACS Nano, 15, 3593–3611. [Read]
Zhan, L., Granade, T., Liu, Y., Wei, X., Youngpairoj, A., Sullivan, V., Johnson, J., and Bischof, J. (2020). Development and optimization of thermal contrast amplification lateral flow immunoassays for ultrasensitive HIV p24 protein detection. Microsystems & Nanoengineering, 6, 1–11. [Read]
Ye, H., Liu, Y., Zhan, L., Liu, Y., and Qin, Z. (2020). Signal amplification and quantification on lateral flow assays by laser excitation of plasmonic nanomaterials. Theranostics, 10, 4359–4373. [Read]
Khosla, K., Kangas, J., Liu, Y., Zhan, L., Daly, J., Hagedorn, M., and Bischof, J. (2020). Cryopreservation and laser nanowarming of Zebrafish embryos followed by hatching and spawning. Advanced Biosystems, 4, 2000138. [Read]
Khosla, K., Zhan, L., Bhati, A., Carley-Clopton, A., Hagedorn, M., and Bischof, J. (2019). Characterization of laser gold nanowarming: a platform for millimeter-scale cryopreservation. Langmuir, 35, 7364–7375. [Read]
Hu, C., Ni, P., Zhan, L., Zhao, H., He, J., Tritt, T.M., Huang, J., and Sumpter, B.G. (2018). Theoretical investigations of electrical transport properties in CoSb3 skutterudites under hydrostatic loadings. Rare Metal, 37, 316–325. [Read]
Zhan, L., Guo, S., Song, F., Gong, Y., Xu, F., Boulware, D.R., McAlpine, M.C., Chan, W.C.W., and Bischof, J.C. (2017). The role of nanoparticle design in determining analytical performance of lateral flow immunoassays. Nano Letters, 17, 7207–7212. [Read]
He, J., Chen, R., Lu, Y., Zhan, L., Liu, Y., Li, D., and Jin, Z. (2016). Fabrication of circular microfluidic network in enzymatically-crosslinked gelatin hydrogel. Materials Science and Engineering: C, 59, 53–60. [Read]