STELLAR CHEMISTRY
Nanocrystals emit light by efficiently 'tunneling' electrons
by Staff Writers
San Diego CA (SPX) Jul 24, 2018

Left: schematics of the tunnel junction formed by two edge-to-edge silver single crystal cuboids with an insulating barrier of polyvinylpyrrolidone (PVP). The top inset shows that photons are generated through inelastic electron tunneling. The device performance can be engineered by tuning the size of the cuboids (a, b, c), the gap size (d), and the curvature of silver cuboid edges. Right: TEM image of the tunnel junction, where the gap is around 1.5 nm.

Using advanced fabrication techniques, engineers at the University of California San Diego have built a nanosized device out of silver crystals that can generate light by efficiently "tunneling" electrons through a tiny barrier. The work brings plasmonics research a step closer to realizing ultra-compact light sources for high-speed, optical data processing and other on-chip applications.

The device emits light by a quantum mechanical phenomenon known as inelastic electron tunneling. In this process, electrons move through a solid barrier that they cannot classically cross. And while crossing, the electrons lose some of their energy, creating either photons or phonons in the process.

Plasmonics researchers have been interested in using inelastic electron tunneling to create extremely small light sources with large modulation bandwidth. However, because only a tiny fraction of electrons can tunnel inelastically, the efficiency of light emission is typically low - on the order of a few hundredths of a percent, at most.

UC San Diego engineers created a device that bumps that efficiency up to approximately two percent. While this is not yet high enough for practical use, it is the first step to a new type of light source, said Zhaowei Liu, a professor of electrical and computer engineering at the UC San Diego Jacobs School of Engineering.

"We're exploring a new way to generate light," said Liu.

Liu's team designed the new light emitting device using computational methods and numerical simulations. Researchers in the lab of Andrea Tao, a professor of nanoengineering at the UC San Diego Jacobs School of Engineering, then constructed the device using advanced solution-based chemistry techniques.

The device is a tiny bow-tie-shaped plasmonic nanostructure consisting of two cuboid, single crystals of silver joined at one corner. Connecting the corners is a 1.5-nanometer-wide barrier of insulator made of a polymer called polyvinylpyrrolidone (PVP).

This tiny metal-insulator-metal (silver-PVP-silver) junction is where the action occurs. Electrodes connected to the nanocrystals allow voltage to be applied to the device. As electrons tunnel from a corner of a silver nanocrystal through the tiny PVP barrier, they transfer energy to surface plasmon polaritons - electromagnetic waves that travel along the metal-insulator interface - which then convert that energy to photons.

But what makes this particular junction more efficient at tunneling electrons inelastically is its geometry and extremely tiny size. By joining two silver single crystals together at their corners with a tiny barrier of insulator in between, researchers essentially created a high quality optical antenna with a high local density of optical states, resulting in more efficient conversion of electronic energy to light.

Metal-insulator-metal junctions have had such low light emission efficiency in the past because they were constructed by joining metal crystals along an entire face, rather than a corner, explained Liu. Giving electrons a high quality optical antenna with a much smaller gap to tunnel through allows efficient light emission, and this kind of structure has been difficult to fabricate with nanolithography methods used in the past, he said.

"Using chemistry, we can build these precise nanosized junctions that allow more efficient light emission," said Tao. "The fabrication techniques we use give us atomic level control of our materials - we can dictate the size and shape of crystals in solution based on the reagents we use, and we can create structures that have atomically flat faces and extremely sharp corners."

With additional work, the team aims to further boost efficiency another order of magnitude higher. They are exploring different geometries and materials for future studies.

The work is published July 23 in Nature Photonics.

Research Report: "Efficient light generation from enhanced inelastic electron tunneling."


Related Links
University of California - San Diego
Stellar Chemistry, The Universe And All Within It

STELLAR CHEMISTRY
Kirigami-inspired technique manipulates light at the nanoscale
Cambridge UK (SPX) Jul 10, 2018
Nanokirigami has taken off as a field of research in the last few years; the approach is based on the ancient arts of origami (making 3-D shapes by folding paper) and kirigami (which allows cutting as well as folding) but applied to flat materials at the nanoscale, measured in billionths of a meter. Now, researchers at MIT and in China have for the first time applied this approach to the creation of nanodevices to manipulate light, potentially opening up new possibilities for research and, ultimat ... read more

Comment using your Disqus, Facebook, Google or Twitter login.

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

STELLAR CHEMISTRY
Lockheed receives contract for THAAD field support

L-3 tapped for aircraft for imagery during missile defense tests

Israel fires at Syrian missiles on Golan Heights: army

Saudi Arabia intercepts Yemen rebel missile: coalition

STELLAR CHEMISTRY
Raytheon receives $7.5 million contract for Sea Sparrow missiles

Raytheon receives $64.4 million contract for MK-31 missiles

State Department approves sale of AMRAAM missiles to Denmark

Saudi Arabia says Yemen rebel missile intercepted

STELLAR CHEMISTRY
Army picks Raytheon for counter-UAV drones

'New India by 2022': New Delhi Expects Drone Industry to Boost State Development

Elbit Systems Rolls-out Hermes 900 StarLiner

Forget joysticks, use your torso to pilot drones

STELLAR CHEMISTRY
Why Ku-band HTS is superior for AISR

Asia is a huge growth market for government SATCOM

DARPA, Lockheed Martin Demonstrate Technologies to Enable a Connected Warfighter Network

IntelsatOne FlexAir Coming This Summer for Government Aircraft Operations

STELLAR CHEMISTRY
Oshkosh lands $13.9 million Army contract for M-ATV services

US Army Looking Away From Counter-Insurgency Warfare to High-Tech Future Battles

Israeli army unveils new 'dual-use' tank

Army researchers suggest uncertainty may be key in battlefield decision making

STELLAR CHEMISTRY
EU anti-trust officials probe Thales, Gemalto merger

Some countries buying Russian gear deserve sanctions waivers: Mattis

NATO allies agree to partner for joint weapons purchases

Roscosmos Will Not Take Part in Farnborough Airshow in UK

STELLAR CHEMISTRY
NATO stands by all allies: official says

India, US to hold key talks in September

Pentagon to provide $200 mn to Ukraine in security funds

U.S., Japan and India conduct minesweeping exercise

STELLAR CHEMISTRY
Physicists uncover why nanomaterial loses superconductivity

Squeezing light at the nanoscale

A new way to measure energy in microscopic machines

AI-based method could speed development of specialized nanoparticles