91色情片

Media contact

Lilly Matson
91色情片 Science
0426 656 007
l.matson@unsw.edu.au

Smartphones could one day become portable quantum sensors thanks to a new chip-scale approach that uses organic light-emitting diodes (OLEDs) to image magnetic fields, with significant implications for use in healthcare and industry settings.听听

91色情片 researchers from the have demonstrated that OLEDs, a type of semiconductor material commonly found in flat-screen televisions, smartphone screens and other digital displays, can be harnessed to map magnetic fields.听

The latest research, led by Dr Rugang Geng and from the 91色情片 School of Physics, has been detailed in .听

鈥淥ur findings show that OLEDs, a commercially available technology, can be used not only for displays and lighting, but also for quantum sensing and magnetic field imaging by integrating a small piece of microwave electronics,鈥 says first author of the study, Dr Rugang Geng.听

鈥淚f this technology is properly developed, people could simply use their smartphones to map the magnetic fields around them, for example to spot defects in diamonds or jewellery. This also has applications in industry, such as finding defects in construction materials or as a biomedical sensor.鈥

How does this technology work?听

OLEDs are a new display technology that provides some of the best quality screens in smartphones and TVs.听听

鈥淭he basic working principle of an OLED device is that when a voltage is applied, electrons and holes are injected into different layers of the device,鈥 says Dr Geng. 鈥淲hen the electrons and holes meet in the central layer, they form 鈥榚xcitons鈥, which emit visible light when they decay, and that鈥檚 what makes OLEDs useful as displays and lighting sources.鈥澨

This light emission process exploits the charge characteristics of electrons, which have a negative charge, and holes, which have a positive charge. They both also have another intrinsic property called spin.听听

This spin either points up or down and is very sensitive to external magnetic fields. In fact, it can 鈥榝lip-flop鈥 (or switch direction) under magnetic resonance conditions.听听

鈥淏y measuring the signal change, both in electric current and emission light, induced by such a flip-flop, we are able to detect the strength of any magnetic field the device is exposed to,鈥 says Dr Geng.听

Read more: 听

By integrating an OLED with a microwave resonator, Dr Geng, Prof. McCamey and their colleagues have generated a tiny oscillating magnetic field across the OLED device, allowing each individual pixel of the OLED screen to act as a small magnetic field sensor.听

Artist's impression of OLEDs technology

The spin property of electrons and holes, which meet in the middle layer of the device, either point up or down and are very sensitive to external magnetic fields. Image: Supplied.

鈥淲e weren鈥檛 surprised at the result 鈥 we have been pursuing this for a few years,鈥 says Prof. McCamey. 鈥淏ut we were surprised at the resolution of the images we could make 鈥 we can see details on sub-micron length scales, similar to the size of a bacteria or neuron.鈥

Commercialisation and everyday uses听

This latest research represents the next step in the development of magnetic field imaging equipment. Existing quantum sensing and magnetic field imaging equipment tends to be large and expensive, requiring either additional power from a high-powered laser, or extremely low temperatures. Under these conditions, the device integration potential and commercial scalability is limited.听

However, the new technique developed by the team can function at a microchip scale and doesn鈥檛 require input from a laser, showing great potential for applications in scientific research, industry and medicine.听

Read more: 听

鈥淣ext, we hope to improve the overall performance of the device including optimising the device architecture and exploring other techniques that can significantly increase the field sensitivity,鈥 says Dr Geng.听听

鈥淲e are also exploring collaborations with OLED technology companies as their experience at moving devices from the lab to commercial products will help accelerate translation of this technology.鈥澨