{"status":"ok","elements":"
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\n Low Ice Adhesion on Nano-Textured Superhydrophobic Surfaces under Supersaturated Conditions<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Critical heat flux maxima during boiling crisis on textured surfaces<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Inverted Leidenfrost-like Effect during Condensation<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n How Droplets Nucleate and Grow on Liquids and Liquid Impregnated Surfaces<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Scale-resistant surfaces: fundamental studies of the effect of surface energy on reducing scale formation<\/a>\n <\/div>\n\t\t\t\t\t
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\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Dropwise Condensation of Low Surface Tension Fluids on Omniphobic Surfaces<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Designing Lubricant-Impregnated Textured Surfaces to Resist Scale Formation<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Ice adhesion on lubricant-impregnated textured surfaces<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Fog harvesting potential of Lubricant-Impregnated Electrospun Nanomats<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>
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\n Stable Dropwise Condensation for Enhancing Heat Transfer via the Initiated Chemical Vapor Deposition (iCVD) of Grafted Polymer Films<\/a>\n <\/div>\n\t\t\t\t\t
\n \"\"<\/a>\n <\/div>\n \n\t\t \n\n \n\t\t
\n More<\/a>\n <\/div> \n <\/div>\n \n<\/div>