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Christopher B. Murray

Researcher at University of Pennsylvania

Publications -  371
Citations -  59526

Christopher B. Murray is an academic researcher from University of Pennsylvania. The author has contributed to research in topics: Nanocrystal & Nanoparticle. The author has an hindex of 88, co-authored 336 publications receiving 54410 citations. Previous affiliations of Christopher B. Murray include Universal Display Corporation & Lawrence Berkeley National Laboratory.

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Smectic Nanorod Superlattices Assembled on Liquid Subphases: Structure, Orientation, Defects, and Optical Polarization

TL;DR: In this article, the orientation of smectic B superlattices of CdSe/CdS dot-in-rod nanocrystals through assembly on different polar interfaces and quantifying the super-lattice orientation through correlated small-and wide-angle grazing-incidence diffraction was determined.
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Gold nanorod translocations and charge measurement through solid-state nanopores.

TL;DR: In this article, the surface charge of gold nanoparticles and nanorods through silicon nitride nanopores was determined from the magnitude of the ionic current change as nanors pass through the pore.
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Alignment, Electronic Properties, Doping, and On-Chip Growth of Colloidal PbSe Nanowires

TL;DR: In this article, the authors demonstrate strategies for device integration of solution-phase synthesized semiconductor nanowires and explore their electronic properties, showing that the nanowire morphology affects the interaction with the electric field.
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Coherent Acoustic Phonons in Colloidal Semiconductor Nanocrystal Superlattices

TL;DR: The picosecond acoustics technique is used to study the acoustic coherent phonons in superlattices of nanometer crystalline CdSe colloids and observes the quantization of phonons with frequencies up to 30 GHz.
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Probing the Fermi energy level and the density of states distribution in PbTe nanocrystal (quantum dot) solids by temperature-dependent thermopower measurements.

TL;DR: This work performs temperature-dependent thermopower measurements on PbTe nanocrystal solids to directly probe the position of E(F) - E(T) and observes that as the size of the nanocrystals reduces, E (F)- E( T) increases primarily due to the widening of density of state (DOS) gap.