May 2008 to 2000 Research AssistantDepartment of Chemistry Stony Brook, NY 2007 to 2009 Teaching AssistantProf. Yaqing Feng
2005 to 2007 Undergraduate Research AssistantTasly pharmaceuticals, Inc
Jun 2006 to Sep 2006 Trainee
Education:
Stony Brook University Stony Brook, NY 2007 to 2013 Ph. D in ChemistrySchool of Chemical Engineering and Technology, Tianjin University 2007 B. S. in Chemical Engineering
Skills:
organic synthesis, Ring Opening metathesis polymerization, polymer synthesis and characterization, Protein extraction/purification, peptide synthesis, glycosylation, cell culture, immunofluoresence assay, NMR, MS, UV/vis, fluorometer, microscopy, HPLC, light scattering, SEC/GPC, chromatography, SDS-PAGE, microplate reader, microsoft office
Us Patents
Curable Nano-Composites For Additive Manufacturing
Curable liquid nano-composites for additive manufacturing of objects having precisely controlled mechanical and electronic properties are provided. Methods of making the curable nano-composites, and methods of additive manufacturing using the nano-composites are also provided. Additionally, objects made from additive manufacturing using the curable nano-composites are provided. In one or more embodiments the nano-composites can contain one or more cross-linkable monomers or oligomers; a photo-initiator; and a nanoparticle. In some embodiments the curable liquid nano-composite can have a viscosity prior to curing of about 1-150 cP at room temperature and pressure. The curable nano-composite can be used for additive manufacturing by printing the curable nano-composite. The printed objects can include various opto-electronic devices such as conductive coatings, electro-chromic devices, electronic interconnects, antennae, RFID tags, transistors, diodes, photovoltaics, light emitting diodes, and capacitors.
Curable Nano-Composites For Additive Manufacturing
- Lawrenceville GA, US Linghui WU - Lawrenceville GA, US
International Classification:
C08K 3/04 H05K 1/09
Abstract:
Curable liquid nano-composites for additive manufacturing of objects having precisely controlled mechanical and electronic properties are provided. Methods of making the curable nano-composites, and methods of additive manufacturing using the nano-composites are also provided. Additionally, objects made from additive manufacturing using the curable nano-composites are provided. In one or more embodiments the nano-composites can contain one or more cross-linkable monomers or oligomers; a photo-initiator; and a nanoparticle. In some embodiments the curable liquid nano-composite can have a viscosity prior to curing of about 1-150 cP at room temperature and pressure. The curable nano-composite can be used for additive manufacturing by printing the curable nano-composite. The printed objects can include various opto-electronic devices such as conductive coatings, electrochromic devices, electronic interconnects, antennae, RFID tags, transistors, diodes, photovoltaics, light emitting diodes, and capacitors.
Curable Nano-Composites For Additive Manufacturing Of Lenses
Curable liquid nano-composites for additive manufacturing of lenses are provided. Methods of making the curable nano-composites, and methods of additive manufacturing using the nano-composites are also provided. Additionally, objects made from additive manufacturing using the curable nano-composites are provided. In one or more embodiments, the nano-composites can contain one or more cross-linkable monomers or oligomers; a photo-initiator; and a nanoparticle. In some embodiments the curable liquid nano-composite can have a viscosity prior to curing of about 1-150 cP at room temperature and pressure The curable nano-composite can be used for additive manufacturing by printing the curable nano-composite. The printed objects can include optical lenses such as both prescription and non-prescription ophthalmic lenses.
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