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Search Results - boxuan+zhou
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Giant Second-Harmonic Generation in Bulk Monolayer MoS2 Thin Films (Case No. 2024-186)
Summary: UCLA researchers in the department of Chemistry and Biochemistry have developed a method to control electron density in molybdenum disulfide (MoS2) thin films that can be used to improve optical material characteristics. Background: Second harmonic generation (SHG) is an optical process in which light interacts with a nonlinear material...
Published: 11/19/2024
|
Inventor(s):
Xiangfeng Duan
,
Yu Huang
,
Boxuan Zhou
Keywords(s):
Adaptive Optics
,
Algorithm Optical Coherence Tomography
,
all-optical diffractive computing
,
all-optical transformation
,
Atomic Force Microscopy Optical Tweezers
,
bulk monolayer
,
Composite Material
,
Composite Materials
,
Dispersion (Optics)
,
Electro-Optics
,
Focus (Optics)
,
Functional Materials
,
Infrared Electromagnetic Spectrum Dispersion (Optics)
,
linear optics
,
material characterization
,
Materials
,
molybdenum disulfide (MOS2)
,
monolayer
,
Nanomaterials
,
Near-Field Scanning Optical Microscope
,
nonlinear dynamics
,
Nonlinear Optics
,
non-linear optics
,
Nonlinear Optics Molecular Dynamics
,
Optical Coherence
,
Optical Communication
,
Optical computing
,
optical implementation
,
Optical networks
,
optical processor
,
optical transmission
,
Optics Parabolic Reflector Curved Mirror
,
Optoelectronic materials
,
reverse engineered optical system
,
second harmonic generation
,
start to end optics design
,
Surgical Instrument Optical Coherence Tomography
Category(s):
Materials
,
Materials > Functional Materials
,
Optics & Photonics
,
Chemical
,
Chemical > Instrumentation & Analysis
A Chemical-Dedoping Strategy to Tailor Electron Density in Molecular-Intercalated Bulk Monolayer MOS2 (Case No. 2024-022)
Summary: UCLA researchers in the Department of Chemistry & Biochemistry have developed a novel strategy to decouple the interlayer interactions in bulk MoS2 to produce a bulk material with desirable monolayer properties. Background: Molybdenum disulfide (MoS2) is a popular and well-studied 2D semiconducting layered material. A single layer, or...
Published: 10/23/2024
|
Inventor(s):
Xiangfeng Duan
,
Yu Huang
,
Boxuan Zhou
Keywords(s):
bulk material
,
bulk monolayer
,
chemical dedoping
,
direct bandgap
,
Doping (Semiconductor)
,
Electronics & Semiconductors
,
exciton
,
indirect bandgap
,
intercalated materials
,
Microelectronics Semiconductor Device Fabrication
,
molybdenum disulfide (MOS2)
,
monolayer
,
Optoelectronic materials
,
Organic Semiconductor
,
photoluminescence
,
photon absorption
,
Semiconductor
,
semiconductor chip foundries
,
Semiconductor Device
,
Semiconductor Device Fabrication
,
Semiconductor Ohmic Contact
,
Semiconductor Risk Assessment
,
Semiconductor Sapphire
,
Semiconductors
,
spin polarization
,
valley polarization
,
zzsemiconducting materials
Category(s):
Materials
,
Materials > Functional Materials
,
Materials > Semiconducting Materials
,
Electrical
,
Electrical > Electronics & Semiconductors
2017-109 High-Throughput Microfluidic Gene-Editing Via Cell Deformability within Microchannels
High-Throughput Microfluidic Gene-Editing via Cell Deformability within MicrochannelsSUMMARYUCLA researchers in the Departments of Pediatrics and Chemistry & Biochemistry have developed a microfluidic device for delivery of biomolecules into living cells using mechanical deformation, without the fouling issues in current systems.BACKGROUNDGene therapy...
Published: 7/19/2023
|
Inventor(s):
Steven Jonas
,
Paul Weiss
,
Ali Khademhosseini
,
Joanna Aizenberg
,
Xu Hou
Keywords(s):
Drug Delivery
,
Gene Editing Systems
,
Gene Therapy
,
Genetic Disease
,
Life Science Research Tools
,
Microfluidics And Mem's
,
Therapeutics & Vaccines
Category(s):
Life Science Research Tools
,
Life Science Research Tools > Microfluidics And Mems
,
Platforms > Drug Delivery
,
Therapeutics
,
Therapeutics > Gene Therapy And Editing