Klauk Hagen, Zschieschang Ute, Pflaum Jens, Halik Marcus
Max Planck Institute for Solid State Research, Heisenbergstrasse 1, 70569 Stuttgart, Germany.
Nature. 2007 Feb 15;445(7129):745-8. doi: 10.1038/nature05533.
The prospect of using low-temperature processable organic semiconductors to implement transistors, circuits, displays and sensors on arbitrary substrates, such as glass or plastics, offers enormous potential for a wide range of electronic products. Of particular interest are portable devices that can be powered by small batteries or by near-field radio-frequency coupling. The main problem with existing approaches is the large power consumption of conventional organic circuits, which makes battery-powered applications problematic, if not impossible. Here we demonstrate an organic circuit with very low power consumption that uses a self-assembled monolayer gate dielectric and two different air-stable molecular semiconductors (pentacene and hexadecafluorocopperphthalocyanine, F16CuPc). The monolayer dielectric is grown on patterned metal gates at room temperature and is optimized to provide a large gate capacitance and low gate leakage currents. By combining low-voltage p-channel and n-channel organic thin-film transistors in a complementary circuit design, the static currents are reduced to below 100 pA per logic gate. We have fabricated complementary inverters, NAND gates, and ring oscillators that operate with supply voltages between 1.5 and 3 V and have a static power consumption of less than 1 nW per logic gate. These organic circuits are thus well suited for battery-powered systems such as portable display devices and large-surface sensor networks as well as for radio-frequency identification tags with extended operating range.
利用低温可加工有机半导体在诸如玻璃或塑料等任意衬底上实现晶体管、电路、显示器和传感器的前景,为广泛的电子产品提供了巨大潜力。特别令人感兴趣的是可由小电池或近场射频耦合供电的便携式设备。现有方法的主要问题是传统有机电路的功耗大,这使得电池供电的应用即使不是不可能,也存在问题。在此,我们展示了一种功耗极低的有机电路,它使用自组装单层栅极电介质和两种不同的空气稳定分子半导体(并五苯和十六氟铜酞菁,F16CuPc)。该单层电介质在室温下生长在图案化的金属栅极上,并经过优化以提供大的栅极电容和低的栅极漏电流。通过在互补电路设计中结合低压p沟道和n沟道有机薄膜晶体管,每个逻辑门的静态电流降低到100 pA以下。我们制造了互补反相器、与非门和环形振荡器,它们在1.5至3 V的电源电压下工作,每个逻辑门的静态功耗小于1 nW。因此,这些有机电路非常适合于诸如便携式显示设备和大面积传感器网络等电池供电系统,以及具有扩展工作范围的射频识别标签。