Explore Similar Technologies

Biodegradable field-tested soil temperature sensor

LLNL researchers developed and field-tested a biodegradable soil temperature sensor device that can be used in industry-scale agriculture.  At the end...

Composite Meter-Class Monolithic Space Telescope

The approach is to use foundational materials science, structural design, thermal analysis, optic fabrication, and space systems engineering, and to...

Semiconductor Opening Switches with Pre-Pulses Elimination

LLNL developed a novel SOS diode structure starting with a n-type silicon wafer.  On the appropriate sides of the wafer, donor and acceptor dopants...

Method of Fabricating Silicon Carbide Nanoneedles

LLNL researchers have developed an approach to form silicon carbide (and diamond) nanoneedles using plasma etching that create micro pillars followed...

Low Optical Intensity OALVs

The approach is to use appropriately doped semi-insulating gallium nitride to provide a high damage tolerant photoconductor with high responsivity to...

Waveform averaging techniques for non-correlated noise in interleaved ADC sample cores

This LLNL invention introduces a technique for optimally detuning the ADC and signal clocks while maintaining synchronization between the two to...

Stub Tuners for High Power Electromagnetic Designs

Contact
Reference Number
IL-13687
Technical Overview

Stub tuners are used in microwave design to match load impedances to allow for maximum power transfer between generator and load.  They consist of one or more transmission lines that have tunable lengths and are each terminated with an open or short-circuited load.  Despite their importance, appropriate mechanisms for stub tuning are limited.  There is a need for a tunable mechanism that could withstand high electric fields to enable high-power microwave (HPM) sources.

Description

Design and construction of a photoconductive switch requires a diamond photoconductor illuminated by light of a certain excitation wavelength.  The diamond material is specifically doped with substitutional nitrogen, which act as a source of electrons.  The device architecture allows maximum light entering the aperture.  The top and bottom electrodes are made of ultra wide band gap (UWBG) transparent conductors or materials with high reflectivity.

Segments of transmission line lengths can be switched to open circuit (as shown) or shorted to the ground (not shown)
Development Status

Current stage of technology development:  TRL 2 (Technology concept and/or application formulated)

LLNL has filed for patent protection on this invention.

Advantages
  • Able to withstand extremely high electric fields
  • Fast turn-on times
  • Tunable to desired properties of the mission
  • Applicable to high power electronics, pulsed power, and particle accelerator applications
Potential Applications
  • Directed energy and effects testing
  • Electronic warfare
  • Long-range communication and radar
  • Industrial microwave heating or curing
  • Pulsed power and particle accelerators