. Military Space News .
CHIP TECH
Researchers discover new method to dissipate heat in electronic devices
by Staff Writers
Riverside CA (SPX) Nov 14, 2016


Fariborz Kargar, a graduate student researcher, is measuring the acoustic phonon dispersion in the semiconductor nanowires in UCR's Phonon Optimized Engineered Materials (POEM) Center, directed by Alexander Balandin. Image courtesy UC Riverside. For a larger version of this image please go here.

Controlling the flow of heat through semiconductor materials is an important challenge in developing smaller and faster computer chips, high-performance solar panels, and better lasers and biomedical devices.

For the first time, an international team of scientists led by a researcher at the University of California, Riverside has modified the energy spectrum of acoustic phonons - elemental excitations, also referred to as quasi-particles, that spread heat through crystalline materials like a wave - by confining them to nanometer-scale semiconductor structures. The results have important implications in the thermal management of electronic devices.

Led by Alexander Balandin, Distinguished Professor of Electrical and Computing Engineering and UC Presidential Chair Professor in UCR's Bourns College of Engineering, the research is described in a paper published Thursday, Nov. 10, in the journal Nature Communications. The paper is titled "Direct observation of confined acoustic phonon polarization branches in free-standing nanowires."

The team used semiconductor nanowires from Gallium Arsenide (GaAs), synthesized by researchers in Finland, and an imaging technique called Brillouin-Mandelstam light scattering spectroscopy (BMS) to study the movement of phonons through the crystalline nanostructures.

By changing the size and the shape of the GaAs nanostructures, the researchers were able to alter the energy spectrum, or dispersion, of acoustic phonons. The BMS instrument used for this study was built at UCR's Phonon Optimized Engineered Materials (POEM) Center, which is directed by Balandin.

Controlling phonon dispersion is crucial for improving heat removal from nanoscale electronic devices, which has become the major roadblock in allowing engineers to continue to reduce their size.

It can also be used to improve the efficiency of thermoelectric energy generation, Balandin said. In that case, decreasing thermal conductivity by phonons is beneficial for thermoelectric devices that generate energy by applying a temperature gradient to semiconductors.

"For years, the only envisioned method of changing the thermal conductivity of nanostructures was via acoustic phonon scattering with nanostructure boundaries and interfaces. We demonstrated experimentally that by spatially confining acoustic phonons in nanowires one can change their velocity, and the way they interact with electrons, magnons, and how they carry heat. Our work creates new opportunities for tuning thermal and electronic properties of semiconductor materials," Balandin said.

Research paper


Comment on this article using your Disqus, Facebook, Google or Twitter login.


Thanks for being here;
We need your help. The Space Media Network continues to grow but revenues have never been harder to maintain.

With the rise of Ad Blockers, and Facebook - our traditional revenue sources via quality network advertising continues to decline. And unlike so many other news sites, we don't have a paywall - with those annoying usernames and passwords.

Our news coverage takes time and effort to publish 365 days a year.

If you find our news sites informative and useful then please consider becoming a regular supporter or for now make a one off contribution.
SpaceMediaNetwork Contributor
$5 Billed Once


credit card or paypal
SpaceMediaNetwork Monthly Supporter
$5 Billed Monthly


paypal only


.


Related Links
University of California - Riverside
Computer Chip Architecture, Technology and Manufacture
Nano Technology News From SpaceMart.com






Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle

Previous Report
CHIP TECH
Scientists develop a semiconductor nanocomposite material that moves in response to light
Worcester MA (SPX) Nov 03, 2016
A research team at Worcester Polytechnic Institute (WPI) has developed a revolutionary, light-activated semiconductor nanocomposite material that can be used in a variety of applications, including microscopic actuators and grippers for surgical robots, light-powered micro-mirrors for optical telecommunications systems, and more efficient solar cells and photodetectors. "This is a new area ... read more


CHIP TECH
Saudis intercept missile fired from Yemen

US general says missile system in S. Korea in 8-10 months

Yemen rebel missile shot down near Mecca: coalition

US to deploy missile defense to South Korea 'soon'

CHIP TECH
Iran missile programme 'non-negotiable': spokesman

USS Carl Vinson test-fires Rolling Airframe Missile, Phalanx

Is China's new short-range missile system designed to compete with Iskander

Raytheon receives Rolling Airframe Missile contract modification

CHIP TECH
Elbit Systems reveals new anti-UAV ReDrone system

First flight for new jet-powered Avenger UAV

A tethered drone-based asset management solution

LDS unveils SpectroDrone to find explosives

CHIP TECH
Upgraded telecommunications network for Marines

Unfurlable mesh reflectors deploy on 5th MUOS satellite

Ultra Electronics, GigaSat becomes channel partner for Milspace comms in Indonesia

NATO contracts for satellite services

CHIP TECH
Elbit launches wide-area and persistent intelligence gathering system

Polaris Defense receives USMC order for off-road vehicles

Duterte approves U.S. assault rifle deal for Philippine police

Lithuania acquires sniper rifles

CHIP TECH
U.S. Foreign Military Sales hit $33.6 billion for 2016

After State Dept. blocks the sale, Rodrigo Duterte cancels order for 26,000 U.S. M16s

UK ex-minister says MoD misled him over Saudi arms deal

Turkish foreign minister hits back at 'weak' Iraq PM

CHIP TECH
NATO chief 'certain' Trump will meet US commitments

Chinese media praise Trump's 'experience and ideology'

US-Philippines military cooperation intact: official

Poland founds volunteer force with eye on Russia

CHIP TECH
Researchers use graphene templates to make new metal-oxide nanostructures

Nano-scale electronics score laboratory victory

Researchers use acoustic waves to move fluids at the nanoscale

First time physicists observed and quantified tiny nanoparticle crossing lipid membrane









The content herein, unless otherwise known to be public domain, are Copyright 1995-2024 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us.