Edmund F. Palermo
Also known as: Ed Palermo
Rensselaer Polytechnic Institute, University of Michigan, Cornell University
About
Ed is from Bay Shore, NY. He began doing research as a high school student with Miriam Rafailovich at SUNY Stony Brook (Stony Brook, NY) in the Department of Materials Science and Engineering. After completing a bachelor's degree in Mechanical Engineering at Cornell University (Ithaca, NY) in 2006, he moved to The University of Michigan (Ann Arbor, MI) and received a Ph.D. in Macromolecular Science and Engineering, under the mentorship of Kenichi Kuroda, in 2011. Following a postdoc position with Anne McNeil in the Chemistry Department at Michigan, Ed joined the faculty at Rensselaer Polytechnic Institute (Troy, NY) in 2014.
Employment
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Rensselaer Polytechnic Institute Associate Professor2021 - Present
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Rensselaer Polytechnic Institute Assistant Professor2014 - 2020
Education
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University of Michigan Ph.D.2006 - 2011
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Cornell University B.S.2002 - 2006
Projects & Funding
Projects & funding information is unavailable.
Publications (41)
- Polymerized Pro‐Estrogen Microneedles via Two Photon Polymerization Save
- Oriented Electrospun Fibers of Poly(pro-curcumin/PEG) Sequester Reactive Oxygen Species and Promote the Growth of Schwann Cells Save
- Location, Location, Location: Main Chain Poly(cobaltocenium)s Outperform Side Chain Analogues Save
- Volumetric Patterning of Gels via Super Resolved Interference Lithography Save
- Poly(curcumin-co-poly(ethylene glycol)) films provide neuroprotection following reactive oxygen species insult in vitro Save
- Dynamic Antimicrobial Poly(disulfide) Coatings Exfoliate Biofilms On Demand Via Triggered Depolymerization Save
- Chiral photon emission from a chiral–achiral perovskite heterostructure Save
- Poly(pro-curcumin) Materials Exhibit Dual Release Rates and Prolonged Antioxidant Activity as Thin Films and Self-Assembled Particles Save
- Biocidal Potency of Polymers with Bulky Cations Save
- Dynamic Antimicrobial Poly(disulfide) Coatings Exfoliate Biofilms On-Demand via Triggered Depolymerization Save