Digital Microfluidics
herrd0kt0r writes "A brilliant team of researches at Duke University have been working on digital microfluidics, with potential applications in biotech labs-on-a-chip, optical routers/switches, wavelength division multiplexers and the like. Essentially, this team has developed a solid state device capable of moving very small drops of fluid over very small distances with very little power. From their website they remark that "[m]icrofluidic processing is performed on unit-sized packets of fluid which are transported, stored, mixed, reacted, or analyzed in a discrete manner using a standard set of basic instructions."
Their site includes eight .mpgs demonstrating their microfluidics tech in real-time. Be sure to take a gander at this video showing programmable flow of droplets as well as this one showing droplet splitting and formation."
Vodka Martini.... microprocessed, not stirred.
This is not a signature.
Sure, direct links to .mpg files on slashdot, what the heck were they thinking?
- Adam L. Beberg - The Cosm Project - http://www.mithral.com/
Thus a wide range of established chemistries and protocols can be seamlessly transferred to a nanoliter droplet format.
/. effect..
Can it be used for TCP/IP? If so I would like to electrowet those mpegs to my computer. Stupid
,
faeryman
What good is the electric light. You need a gas light to see the dim glow!
Cars! You need a mechanic to ride along to keep it running. Just toys for rich playboys.
ATT gave up the right to enter the computer business in exchange for keeping the monopoly on phone service for a few more years. What possible use could there be for C & UNIX outside of a few research instituions?
IBM let the PC industry slip through their fingers because they viewed them as toys, nothing there that should distract them from their mainframe business.
I doubt that anybody will really know the answer to your question, no matter what it's asked about, except in hindsight.
"Glory is fleeting, but obscurity is forever." --Napoleon Bonaparte
Programmable flow
:) )
Droplet splitting and formation
HTH.
Oliver.
(I reserve the right to take them down if you kill my web server too
- Oliver
The right to bear arms is only slightly less stupid than the right to arm bears...
Some applications might be:
- chemical analyzers for bonb detection, drug detection, polutant detection, purity analysis, etc.
- hydraulic applications such as you see in full scale in real life (a nano bulldozer, heh)
- steam engine applications maybe? Turn that AMD heat pig of yours into a small, closed-system electical generator
Anyway, I'm sure there are many more potential applications, but you get the idea.
Everything in the Universe sucks: It's the law!
im thinking, some blacklight reflective liquid, on the top of the case, moving around in different patterns. Or coat the top of the whole case with a mapped out electirc grid, and you make it so whatever shape you want it to draw (controlled by the computer) it does! it could look pretty bad ass if you did a good job...oh and you didn't move your case.
"an eye for an eye only makes the whole world blind"
I had a weird vision of things to come the other day...
I dreamt in the future, man will have developed his skills of genetic engineering and stem cell research to the point where he can make things that are only science fiction now..
For example, I started thinking about genetically engineered photovoltic algea. I saw big gigantic pools of green liquid converting sunlight to electricity using completely enviromentally friendly and biodegradeable algea.
I also thought about genetically engineered eyeballs that could do the same thing. Imagine 100 foot eyeballs looking up at the sky in the desert. Or genetically engineered eyeballs for space observation.
Just another one of those weird topics, on a weird day. Just to humor myself, does anyone know of any research being done into this field?
--toq
W00t! No more pipetting.
This has some very useful applications. I work in a genetics lab doing a lot of molecular biology work with primate genomes.
It's still a needle in a haystack issue. We deal with nanograms of DNA suspended in microliters of liquids. The microliter is pretty much the limit of what we can manually manipulate, anything less and it gets damn expensive. As it is, there's a lot of suspending, centrifuging, and shaking going on in the lab; a lot of work and time to manipulate a very small amount of material.
If I could just load my sample onto a microfluidics device and 'manipulate' everything by executing commands, life would be much easier. You'd probably avoid a lot of loss and contamination issues with this type of technology. The amounts of expensive reagents used could be reduced significantly. It'd be like a tiny tiny molecular biology lab in a box.
Those are just some of the research possiblities. I'm sure you could have a 'farm' of these microfluidics devices to do production level work.
-- "Sucks to your ass-mar"
Let me be the first to predict that this technology will be used to manufacture the most precision-shaken or stirred martinis science can create.
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This is my SIG. There are many like it, but this one is mine.
this whole shebang about microdroplet formation and movement is especially incredible when considering lab-on-a-chip applications for the biotech industry.
one of the biggest problems with current solutions is the difficulty in utilizing small samples of blood/fluid. the solid-state approach of this team is great in that there are, by definition, NO MOVING PARTS! nothin to break down, and nothin to shrink down either. so you can keep things puny. the fluid volume in these experiments are in the _nanoliter_ range. and they have demonstrated their ability to split and reform droplets.
so imagine this: you have a limited quantity of blood to analyze, and wanna run a bazillion tests. no sweat. with this tech, you can suck off puny portions at a time! you can move them around however you'd like as well, to whatever assays you'd like to run.
the team has also demonstrated excellent droplet mixing results as well. why is this important? well, with fluid volumes that small, it is difficult to mix solutions. their electrowetting approach has yielded results that show excellent mixing. this is good for labs-on-a-chip as well, as you may need to mix different things together for certain assays.
the potential for this kind of technology is pretty staggering. very small. very little power. no moving parts. use em for switches of many sorts! or hell, did you check out the video where they move the drop at over 200 hertz?!
HOLY SHIZNIT!
that's fast! eesh! but screw all this serious stuff. i think we can _all_ enjoy the first video showing the droplet performing humping maneuvers. aww jeah.
A while back Slashdot ran a story aout micro engines. If I recall correctly werent they having probles with fluid aka fuel flowing through those little suckers due to them being small etc etc dont have time to go back and read it work soon. Anyways maybe these two techs can be combied if they can make it small enough to run on the micro engines. My 2 cents.
This will just make fluids all the more important. And we know what happens when such things become put into law.
Maybe it could be used to write your name in yellow on a single snowflake.
there was a comment above posted by anonymous coward that i'd thought i'd pass along. he just posted a full mirror of the site:
http://www.duke.edu/~pyp/microfluidics
apparently, you guys blew www.ee.duke.edu up.
Wow. I remember reading about fluidic processing in the late 1960s. Must've gone from the "valve" stage to to the IC (Integrated Conduit ?) ;-) since then. Hey, check out this fluidic amplifier ... not very micro back then eh ?
Man that must really take persistence working on a tech bywater for 40 years waiting for it to come good. Mind you I think I remember even back then there being real world applications for this ... slow processing in hostile environments where electronics would get fried etc ... I think from memory it used the Coanda Effect or something for switching fluid streams. And there were adds in New Scientist for years afterwards selling DIY fluidics kits.
Well maybe at last its time has come ...
Bitter and proud of it.