Forum for Science, Industry and Business
Sponsored by:     Siemens  n-tv 
Search our Site:

Topic (optional):

 

Home Reports Power and Electrical Engineering Content

Micro microwave does pinpoint cooking for miniaturized labs

next article
13.11.2007

Researchers at the National Institute of Standards of Technology (NIST) and George Mason University have demonstrated what is probably the world’s smallest microwave oven, a tiny mechanism that can heat a pinhead-sized drop of liquid inside a container slightly shorter than an ant and half as wide as a single hair. The micro microwave is intended for lab-on-a-chip devices that perform rapid, complex chemical analyses on tiny samples.

 

In a paper in the November 2007 Journal of Micromechanics and Microengineering*, the research team led by NIST engineer Michael Gaitan describes for the first time how a tiny dielectric microwave heater can be successfully integrated with a microfluidic channel to control selectively and precisely the temperature of fluid volumes ranging from a few microliters (millionth of a liter) to sub-nanoliters (less than a billionth of a liter).


Sample heating is an essential step in a wide range of analytic techniques that could be built into microfluidic devices, including the high-efficiency polymerase chain reaction (PCR) process that rapidly amplifies tiny samples of DNA for forensic work, and and methods to break cells open to release their contents for study.

The team embedded a thin-film microwave transmission line between a glass substrate and a polymer block to create its micro microwave oven. A trapezoidal-shaped cut in the polymer block only 7 micrometers across at its narrowest—the diameter of a red blood cell—and nearly 4 millimeters long (approximately the length of an ant) serves as the chamber for the fluid to be heated.

Based on classical theory of how microwave energy is absorbed by fluids, the research team developed a model to explain how their minature oven would work. They predicted that electromagnetic fields localized in the gap would directly heat the fluid in a selected portion of the micro channel while leaving the surrounding area unaffected. Measurements of the microwaves produced by the system and their effect on the fluid temperature in the micro channel validated the model by showing that the increase in temperature of the fluid was predominantly due to the absorbed microwave power.

Once the new technology is more refined, the researchers hope to use it to design a microfluidic microwave heater that can cycle temperatures rapidly and efficiently for a host of applications.

Michael E. Newman | Source: EurekAlert!
Further information: www.nist.gov

next article

More articles from Power and Electrical Engineering:

nachricht Smartphone App Illuminates Power Consumption
24.11.2009 | University of Michigan

nachricht Counterfeit euros are detected with an optical mouse
19.11.2009 | FECYT - Spanish Foundation for Science and Technology

B2B Search

Product / Service
Company / Organisation

Latest News

First black holes may have incubated in giant, starlike cocoons

25.11.2009 | Physics and Astronomy

KfW issues its first ever 7 year Euro-Benchmark

25.11.2009 | Business and Finance

Intelligence inside metal components

25.11.2009 | Information Technology

VideoLinks
More VideoLinks >>>

Event News

Multidisciplinary meeting on Urological Cancers aims to benefit cancer patients

20.11.2009 | Event News

'Golden Age' for clinical psychology in Northern Ireland

20.11.2009 | Event News

New Perspectives in Marine Anti-Fouling Research

11.11.2009 | Event News