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Carrier Storage Frequency Divider Using Silicon PIN Diodes (Case No. 2025-023)
Summary: Researchers in UCLA’s Department of Electrical and Computer Engineering have designed and fabricated an innovative device capable of frequency division at the Terahertz range, featuring low power consumption, quadrature outputs, and high sensitivity. Background: Traditional electronic and optical devices struggle to operate at the...
Published: 2/14/2025
|
Inventor(s):
Sidharth Thomas
,
Aydin Babakhani
,
Benyamin Fallahi Motlagh
Keywords(s):
Analogue Electronics
,
Antennas/Wireless
,
artificial electromagnetic materials
,
Bandwidth (Signal Processing)
,
Bioelectromagnetics
,
bioelectronics
,
bistable electroactive polymer
,
Cardiac Electrophysiology
,
Consumer Electronics
,
Continuous-Wave Radar
,
Digital Electronics
,
Digital Signal Processing
,
Electrical Engineering
,
Electroactive Polymers
,
Electrocatalyst
,
electrochemical sensors
,
Electrode
,
Electrode 3D Printing
,
electrodeposition
,
electrodes
,
Electroencephalography
,
Electroencephalography (EEG)
,
Electroencephalography Microsecond Neurofeedback
,
Electrolyte
,
electromagnetic
,
Electromagnetism
,
Electron
,
electron emittance
,
Electron Gun
,
Electronics & Semiconductors
,
energy-efficient wireless communication
,
Extremely High Frequency
,
high-frequency signals
,
image signal processing
,
Imaging
,
Integrated Circuit
,
low-power device
,
Optical networks
,
PIN Diode
,
power conversion efficiency
,
Radar
,
Radar / Antennae
,
Remote Sensing
,
Semiconductor
,
Semiconductor Device
,
Semiconductors
,
signal decoding
,
Signal Processing
,
Silicon
,
Synthetic aperture radar (SAR)
,
Wireless
,
wireless communication
,
wireless connectivity
,
Wireless Sensor Network
,
wireless spectrum
Category(s):
Electrical > Electronics & Semiconductors
,
Electrical > Electronics & Semiconductors > Circuits
,
Electrical
,
Electrical > Wireless
,
Electrical > Signal Processing
2023-102 A Dynamic Cholesteric Liquid Crystal for Organoid, Spheroid, 3D Cell Aggregate Manufacturing
Summary: UCLA and University of Connecticut researchers have engineered a novel liquid-crystal-based biomaterial with a simple fabrication process for organoid, spheroid and 3D cell aggregate manufacturing that enables rapid cell growth. Background: The current waiting list for people who need a lifesaving organ transplant is over 100,000 cases...
Published: 2/14/2025
|
Inventor(s):
Paul Weiss
,
Amir Nasajpour
,
Ali Tamayol
,
Mohamadmahdi Samandari
Keywords(s):
3D biofabrication
,
3D Printing
,
Biocompatibility
,
biocompatible
,
Biomaterial 3D Printing
,
biomedical implantation
,
Cell and tissue culture
,
Cell Culture
,
cell-extracellular matrix (ECM)
,
cellular aggregates
,
Cellular agriculture
,
Cholesterol
,
cholesteryl ester liquid crystals (CLCs)
,
Cultured meat
,
Electrode 3D Printing
,
liquid crystal
,
liquid crystal nanofibers
,
mesogens
,
Organ Transplant
,
organogenesis
,
scaffolds
,
self-assemble
,
Stem Cells / Regenerative Medicine
,
Tissue Engineering
Category(s):
Chemical
,
Chemical > Polymers
,
Materials
,
Materials > Functional Materials
,
Life Science Research Tools
,
Life Science Research Tools > Research Methods
,
Life Science Research Tools > Other Reagents
,
Medical Devices
,
Medical Devices > Surgical Tools
,
Therapeutics
,
Therapeutics > Stem Cells And Regenerative Medicine > Ips Stem Cells