Zobrazeno 1 - 6
of 6
pro vyhledávání: '"Daniel N. Freitas"'
Autor:
Daniel N. Freitas, Ismail Emre Araci, Ulf Schlichtmann, Bing Li, Tsung-Yi Ho, Travis McAuley, Tsun-Ming Tseng, Mengchu Li
Publikováno v:
IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems. 37:1588-1601
Continuous-flow microfluidic large-scale integration (mLSI) shows increasing importance in biological/chemical fields, thanks to its advantages in miniaturization and high throughput. Current mLSI is designed manually, which is time-consuming and err
Publikováno v:
Environmental Science: Nano. 5:64-71
Proteins encountered in biological and environmental systems bind to engineered nanomaterials (ENMs) to form a protein corona (PC) that alters the surface chemistry, reactivity, and fate of the ENMs. Complexities such as the diversity of the PC and v
Autor:
Catherine Nameth, Karen Mac, Daniel N. Freitas, Kyle T. Gerner, Zoe N. Amaris, Korin E. Wheeler
Publikováno v:
Journal of Chemical Education. 94:1939-1945
A series of laboratory experiments were developed to introduce first-year chemistry students to nanoscience through a green chemistry approach. Students made and characterized the stability of silver nanoparticles using two different methods: UV-visi
Autor:
Ismail Emre Araci, Tsung-Yi Ho, Tsun-Ming Tseng, Mengchu Li, Amy Mongersun, Daniel N. Freitas, Ulf Schlichtmann
Publikováno v:
DAC
Microfluidic large-scale integration (mLSI) is a promising platform for high-throughput biological applications. Design automation for mLSI has made much progress in recent years. Columba and its succeeding work Columba 2.0 proposed a mathematical mo
Publikováno v:
Journal of Micromechanics and Microengineering. 29:035009
Publikováno v:
Journal of Nanobiotechnology
Background In a biological system, an engineered nanomaterial (ENM) surface is altered by adsorbed proteins that modify ENM fate and toxicity. Thus far, protein corona characterizations have focused on protein adsorption, interaction strength, and do