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                    agents for SMART embolization. Nanoscale 2021;13:8817-36.  DOI
               58.       Li X, Cao L, Xiao B, et al. Superelongation of liquid metal. Adv Sci 2022;9:2105289.  DOI
               59.       Kong W, Wang Z, Wang M, et al. Oxide-mediated formation of chemically stable tungsten-liquid metal mixtures for enhanced
                    thermal interfaces. Adv Mater 2019;31:1904309.  DOI
               60.       Kim H, Lee K, Oh JW, et al. Shape-deformable and locomotive MXene (Ti C T x )-encapsulated magnetic liquid metal for 3D-
                                                                        3
                                                                         2
                    motion-adaptive synapses. Adv Funct Mater 2023;33:2210385.  DOI
               61.       Murphy CJ, Sau TK, Gole AM, et al. Anisotropic metal nanoparticles: synthesis, assembly, and optical applications. J Phys Chem B
                    2005;109:13857-70.  DOI
               62.       Lin Y, Liu Y, Genzer J, Dickey MD. Shape-transformable liquid metal nanoparticles in aqueous solution. Chem Sci 2017;8:3832-7.
                    DOI
               63.       Li Z, Zhang H, Wang D, et al. Reconfigurable assembly of active liquid metal colloidal cluster. Angew Chem Int Ed Engl
                    2020;59:19884-8.  DOI
               64.       Wang  D,  Gao  C,  Wang  W,  et  al.  Shape-transformable,  fusible  rodlike  swimming  liquid  metal  nanomachine.  ACS  Nano
                    2018;12:10212-20.  DOI
               65.       Sun X, Guo R, Yuan B, et al. Low-temperature triggered shape transformation of liquid metal microdroplets. ACS Appl Mater
                    Interfaces 2020;12:38386-96.  DOI
               66.       Hou Y, Qiao Y, Zhang D, et al. Numerical simulation for treatment of hypothermia based on vascular interventional direct heating
                    system. J Therm Biol 2018;76:29-37.  DOI
               67.       Deng Y, Liu J. Hybrid liquid metal-water cooling system for heat dissipation of high power density microdevices. Heat Mass
                    Transfer 2010;46:1327-34.  DOI
               68.       Luo M, Liu J. Experimental investigation of liquid metal alloy based mini-channel heat exchanger for high power electronic devices.
                    Front Energy 2013;7:479-86.  DOI
               69.       Wang L, Zhang XD, Liu J, Zhou YX. Heat dissipation system based on electromagnetic-driven rotational flow of liquid metal
                    coolant. J Thermal Sci Eng Appl 2021;13:061023.  DOI
               70.       Deng Y, Zhang M, Jiang Y, Liu J. Two-stage multichannel liquid-metal cooling system for thermal management of high-heat-flux-
                    density chip array. Energy Convers Manag 2022;259:115591.  DOI
               71.       Gao Y, Liu J. Gallium-based thermal interface material with high compliance and wettability. Appl Phys A 2012;107:701-8.  DOI
               72.       Wang X, Fan L, Zhang J, et al. Printed conformable liquid metal e-skin-enabled spatiotemporally controlled bioelectromagnetics for
                    wireless multisite tumor therapy. Adv Funct Mater 2019;29:1907063.  DOI
               73.       Fan P, Sun Z, Wang Y, et al. Nano liquid metal for the preparation of a thermally conductive and electrically insulating material with
                    high stability. RSC Adv 2018;8:16232-42.  DOI
               74.       Panhwar F, Chen Z, Hossain SMC, et al. Near-infrared laser mediated modulation of ice crystallization by two-dimensional
                    nanosheets enables high-survival recovery of biological cells from cryogenic temperatures. Nanoscale 2018;10:11760-74.  DOI
               75.       Cao Y, Chang T, Fang C, Zhang Y, Liu H, Zhao G. Inhibition effect of Ti C T  MXene on ice crystals combined with laser-mediated
                                                                     2 x
                                                                    3
                    heating facilitates high-performance cryopreservation. ACS Nano 2022;16:8837-50.  DOI
               76.       Zhan T, Liu K, Yang J, Dang H, Chen L, Xu Y. Fe O nanoparticles with carboxylic acid functionality for improving the structural
                                                      3  4
                    integrity of whole vitrified rat kidneys. ACS Appl Nano Mater 2021;4:13552-61.  DOI
               77.       Tian C, Shen L, Gong C, Cao Y, Shi Q, Zhao G. Microencapsulation and nanowarming enables vitrification cryopreservation of
                    mouse preantral follicles. Nat Commun 2022;13:7515.  DOI
               78.       Jain PK, Huang X, El-Sayed IH, El-Sayed MA. Noble metals on the nanoscale: optical and photothermal properties and some
                    applications in imaging, sensing, biology, and medicine. Acc Chem Res 2008;41:1578-86.  DOI
               79.       Hu JJ, Liu MD, Chen Y, et al. Immobilized liquid metal nanoparticles with improved stability and photothermal performance for
                    combinational therapy of tumor. Biomaterials 2019;207:76-88.  DOI
               80.       Lu Y, Hu Q, Lin Y, et al. Transformable liquid-metal nanomedicine. Nat Commun 2015;6:10066.  DOI
               81.       Han Z, Rao JS, Gangwar L, et al. Vitrification and nanowarming enable long-term organ cryopreservation and life-sustaining kidney
                    transplantation in a rat model. Nat Commun 2023;14:3407.  DOI
               82.       Wang D, Xie W, Gao Q, et al. Non-magnetic injectable implant for magnetic field-driven thermochemotherapy and dual stimuli-
                    responsive drug delivery: transformable liquid metal hybrid platform for cancer theranostics. Small 2019;15:1900511.  DOI
               83.       Kim JH, Kim S, So JH, Kim K, Koo HJ. Cytotoxicity of gallium-indium liquid metal in an aqueous environment. ACS Appl Mater
                    Interfaces 2018;10:17448-54.  DOI
               84.       Guo R, Liu J. Implantable liquid metal-based flexible neural microelectrode array and its application in recovering animal locomotion
                    functions. J Micromech Microeng 2017;27:104002.  DOI
               85.       Sun X, Cui B, Yuan B, et al. Liquid metal microparticles phase change medicated mechanical destruction for enhanced tumor
                    cryoablation and dual-mode imaging. Adv Funct Materials 2020;30:2003359.  DOI
               86.       Yan J, Zhang X, Liu Y, et al. Shape-controlled synthesis of liquid metal nanodroplets for photothermal therapy. Nano Res
                    2019;12:1313-20.  DOI
               87.       Hou Y, Lu C, Dou M, et al. Soft liquid metal nanoparticles achieve reduced crystal nucleation and ultrarapid rewarming for human
                    bone marrow stromal cell and blood vessel cryopreservation. Acta Biomater 2020;102:403-15.  DOI
               88.       Zhang C, Tang J, Xie W, et al. Mechanistic observation of interactions between macrophages and inorganic particles with different
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