Department of Materials Science and Engineering, UCLA, Los Angeles, CA 90095, USA.
Adv Mater. 2012 Nov 14;24(43):5782-825. doi: 10.1002/adma.201201482. Epub 2012 Aug 29.
Graphene, a single layer of carbon atoms in a honeycomb lattice, offers a number of fundamentally superior qualities that make it a promising material for a wide range of applications, particularly in electronic devices. Its unique form factor and exceptional physical properties have the potential to enable an entirely new generation of technologies beyond the limits of conventional materials. The extraordinarily high carrier mobility and saturation velocity can enable a fast switching speed for radio-frequency analog circuits. Unadulterated graphene is a semi-metal, incapable of a true off-state, which typically precludes its applications in digital logic electronics without bandgap engineering. The versatility of graphene-based devices goes beyond conventional transistor circuits and includes flexible and transparent electronics, optoelectronics, sensors, electromechanical systems, and energy technologies. Many challenges remain before this relatively new material becomes commercially viable, but laboratory prototypes have already shown the numerous advantages and novel functionality that graphene provides.
石墨烯是一种由碳原子以蜂窝状晶格排列而成的单层物质,具有许多优异的基本特性,使其成为广泛应用的有前途的材料,特别是在电子设备领域。其独特的形态和卓越的物理性能有可能使超越传统材料限制的新一代技术成为可能。极高的载流子迁移率和饱和速度可以使射频模拟电路实现快速开关速度。纯净的石墨烯是一种半金属,无法实现真正的关断状态,这通常使其无法在没有带隙工程的情况下应用于数字逻辑电子学。基于石墨烯的器件的多功能性超出了传统晶体管电路的范围,包括灵活透明的电子、光电、传感器、机电系统和能源技术。在这种相对较新的材料变得具有商业可行性之前,仍然存在许多挑战,但实验室原型已经展示了石墨烯提供的许多优势和新颖功能。