
A material less sticky than Teflon has been created by covering a surface with a 鈥渇orest鈥 of carbon nanotubes. It could find use in the construction of microscopic machines and devices, which are prone to inter-molecular forces.
Microscopic structures experience friction because of the minute attractive forces that exist between molecules. These forces become much more significant as components are shrunk to the scale of a few millionths of a metre.
Now researchers from Cambridge University in UK, the Technical University of Denmark and the University of Southern Denmark have found a way to reduce this friction. They discovered that coating a work surface with upright carbon nanotubes allows microscopic components to be moved across the surface more easily.
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The team coated a silicon wafer with a layer of upright nanotubes, spaced 100 nanometres apart through a process called chemical vapour deposition. This produced a thick 鈥渇orest鈥 of tubes, with each tube 1000 nm tall and 100 nm wide.
Playing field
The researchers then used tiny levers to push 5-microns-wide polystyrene beads over the surface (see image). They repeated the test on flat surfaces of gold, silicon, diamond-like carbon and Teflon. They found the nanotube-covered surface to be four times less sticky than its nearest rival, Teflon.
鈥淪oft latex beads that were stuck onto Teflon could be pushed around on the nanotube forests like a soccer ball on a playing field,鈥 Peter B酶ggild from the Technical University of Denmark told 快猫短视频.
Moving the bead across the nanotube-forest surface took 0.2 micronewtons of force, compared to 1.1 micronewtons on the Teflon surface or more than 1.4 micronewtons on the gold or silicon surface. One micronewton is roughly the force needed to lift one ten-thousandth of a gram.
Friction is reduced because the tip of each tube only touches a small part of the object above. 鈥淎nything on a nanotube forest is practically suspended in the air,鈥 B酶ggild explains. To lift something off the non-stick surfaces, the researchers simply used a stickier surface to grab the object.
Stick and tear
In another experiment, Kjetil Gjerde from Technical University of Denmark was able to manipulate an organic nanofibre laid across the top of the nanotubes. Organic nanofibres show potential for use in nanoelectronics but are soft and fragile and have never been manipulated so deftly before, he says.
鈥淧eople have so far had to push them around like hockey,鈥 says Ken Teo from the University of Cambridge. 鈥淏ut a lot of the time they either stick or tear.鈥 The researchers picked up the nanofibre by pushing a probe into the 鈥渇orest鈥 beneath the fibre and lifting it upwards.
鈥淭he tubes are like grass, you can push into them,鈥 says Teo. The researchers demonstrated how this could be applied by moving the nanofibre from the nanotube surface onto a set of electrodes to test its electrical properties.
鈥淎dhesion of solids is a big problem at this scale,鈥 says Tommy Horozov, a chemist at Hull University, UK. 鈥淭his shows how to solve a long lasting problem with manipulating solid objects.鈥 The nanotube-covered surface could make it easier to work with soft material like cells, he suggests.
Horozov has used a similar technique to produce water-repellent, so-called self-cleaning surfaces (see Anti-fog glass coating has clear applications). 鈥淭his is the same approach but with a dry surface,鈥 he says.