Yang Geon Gug, Choi Hee Jae, Han Kyu Hyo, Kim Jang Hwan, Lee Chan Woo, Jung Edwin Ino, Jin Hyeong Min, Kim Sang Ouk
National Creative Research Initiative Center for Multi-Dimensional Directed Nanoscale Assembly, Department of Materials Science and Engineering, KAIST, Daejeon 34141, Republic of Korea.
Department of Organic Materials Engineering, Chungnam National University, Daejeon, 34134, Republic of Korea.
ACS Appl Mater Interfaces. 2022 Mar 16;14(10):12011-12037. doi: 10.1021/acsami.1c22836. Epub 2022 Mar 1.
Block copolymer (BCP) nanopatterning has emerged as a versatile nanoscale fabrication tool for semiconductor devices and other applications, because of its ability to organize well-defined, periodic nanostructures with a critical dimension of 5-100 nm. While the most promising application field of BCP nanopatterning has been semiconductor devices, the versatility of BCPs has also led to enormous interest from a broad spectrum of other application areas. In particular, the intrinsically low cost and straightforward processing of BCP nanopatterning have been widely recognized for their large-area parallel formation of dense nanoscale features, which clearly contrasts that of sophisticated processing steps of the typical photolithographic process, including EUV lithography. In this Review, we highlight the recent progress in the field of BCP nanopatterning for various nonsemiconductor applications. Notable examples relying on BCP nanopatterning, including nanocatalysts, sensors, optics, energy devices, membranes, surface modifications and other emerging applications, are summarized. We further discuss the current limitations of BCP nanopatterning and suggest future research directions to open up new potential application fields.
嵌段共聚物(BCP)纳米图案化已成为一种用于半导体器件和其他应用的通用纳米制造工具,因为它能够构建具有5-100纳米关键尺寸的定义明确的周期性纳米结构。虽然BCP纳米图案化最有前景的应用领域是半导体器件,但BCP的多功能性也引发了广泛其他应用领域的极大兴趣。特别是,BCP纳米图案化本质上的低成本和直接的加工过程因其能够大面积并行形成密集的纳米级特征而得到广泛认可,这与典型光刻工艺(包括极紫外光刻)的复杂加工步骤形成鲜明对比。在本综述中,我们重点介绍了BCP纳米图案化在各种非半导体应用领域的最新进展。总结了依赖BCP纳米图案化的显著例子,包括纳米催化剂、传感器、光学器件、能量装置、膜、表面改性和其他新兴应用。我们进一步讨论了BCP纳米图案化目前的局限性,并提出了未来的研究方向,以开拓新的潜在应用领域。