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Author: Jim
Professor McGrath holds a BS degree in Mechanical Engineering from Arizona State and a MS degree in Mechanical Engineering from MIT. He earned a PhD in Biological Engineering from Harvard/MIT's Division of Health Sciences and Technology. He then trained as a Distinguished Post-doctoral Fellow in the Department of Biomedical Engineering at the Johns Hopkins University. Professor McGrath has been on the Biomedical Engineering faculty at the University of Rochester since 2001 where he also served as the director of the graduate program in BME for more than a decade and currently serves as Associate Director of the URNano microfab and metrology core. Professor McGrath also has faculty affiliations with many other programs at UR including the Material Research Program, the Environmental Health and Sciences Center, the Biochemistry and Biophysics program, and the Musculoskeletal Research Center. McGrath's graduate, post-doctoral, and early faculty research was focused on quantitative experiments and mathematical modeling of cell migration covering molecular, cellular, and multi-cellular phenomena. This was true until 2007 when he, along with Professor Philippe Fauchet (now Dean at Vanderbilt) and PhD students Tom Gaborski (RIT) and Chris Streimer (Adarza), discovered a means to self-assembled nanopores in 15 nm thick free-standing silicon and demonstrated the remarkable transport properties of the new material in a Nature paper. This seminal discovery led to the creation of the multidisciplinary Nanomembrane Research Group (NRG) and the founding of SiMPore Inc. in the same year. The NRG and SiMPore have been dedicated to the advancement of ultrathin membrane technologies and exploring all of their potential applications ever since.
This blog also dates back to 2007 and has had contributions from more than 100 students, faculty, scientists, engineers, and entrepreneurs. It contains over 2,500 pages and posts logging progress large and small over all these years. Yet somehow it feels like we are just getting started.
Voting is open until NRG tomorrow. We’ll critically discuss the winner and summarize the 2nd place paper. [yop_poll id=”3″]
This paper touches on two thing of current interest to me: Electrical Impedance Spectroscopy (EIS) and troponin detection. Tropinin detection has been identified as a useful biomarker for a chip based blood analyzer. Tropinin is a plasma biomarker that correlates…
As part of the decision letter on Barrett’s ancient vacuole manuscript, the editor sent a little tutorial from the University of Texas on significant digits and standard deviations. Apparently ACTA Biomaterialia looks at this carefully and found we needed a…
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While serving on an NSF MRI (Major Research Instrumentation program) review panel today the director shared his analysis of funding probabilities as a function of score. The analysis was only done for the Directorate of Math and Physical Sciences, but…
Submitted on April 7, 2014. Posted to NRG Cloud under NRG/Funding. Figure 2. Dead End Filtration with SEPCONTM (A) SiMPore’s SEPCONTM spin cup with a silicon nanomembrane chip. B) Dead end filtration in a centrifuge. The direction of the centrifugal…
Knowledge of the particle number is critical in many of our applications. In trying to rationalize membrane ‘clogging’ by particles for example, it is wise to compare the particle density to pore density at the membrane. When conjugating protein to…
Submitted to Acta Biomaterialia – March 15, 2014 Manuscript as PDF Check Status
Submitted on March 14, 2014 Submitted Manuscript (PDF) Check Status
Dear McGrath Lab members, I would like to notify you that BME245 (Biomaterials Lab) students will be coming at following times (see below) to use the plate reader. They will be accompanied with experienced TAs at all times. Wednesday- 3/26-…