Inorganic block copolymer lithography

被引:144
作者
Nunns, Adam [1 ]
Gwyther, Jessica [1 ]
Manners, Ian [1 ]
机构
[1] Univ Bristol, Sch Chem, Bristol BS8 1TS, Avon, England
基金
英国工程与自然科学研究理事会;
关键词
Block copolymer; Lithography; Self-assembly; ONE-DIMENSIONAL NANOSTRUCTURES; HUGGINS INTERACTION PARAMETER; THIN-FILMS; MOLECULAR-WEIGHT; LIGHT-SCATTERING; PHASE-BEHAVIOR; SQUARE ARRAYS; FABRICATION; PATTERNS; POLYSTYRENE;
D O I
10.1016/j.polymer.2012.11.057
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Block copolymer lithography, a process where block copolymer self-assembly is integrated with conventional lithographic patterning, is emerging as a promising technology for addressing the future needs of the semiconductor industry. The ability of block copolymers to self-assemble into ordered nanodomains allows for simple, low cost nanopatterning into underlying substrates. Since its initial conception, block copolymer lithography has been demonstrated using a variety of block copolymers, with research primarily focusing on all-organic diblock copolymers. The most notable example is polystyrene-block-poly(methyl methacrylate) (PS-b-PMMA) where long-range ordering of nanodomains has allowed applications on a commercial scale. However, scaling down of the feature sizes produced from the self-assembly of organic block copolymers is often limited due to the relatively low Flory-Huggins interaction parameter, x. In addition, etch selectivity between the blocks, and their etch resistance for subsequent pattern transfers steps, is generally low. This review article provides an overview of how the introduction of segments containing inorganic elements into block copolymers can help to address these issues and can also allow the direct deposition of functional materials such as metal nanoparticles. This has led to potential interest for the next generation of block copolymer lithography applications. (c) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1269 / 1284
页数:16
相关论文
共 159 条
[81]   Siticon device scaling to the sub-10-nm regime [J].
Leong, M ;
Doris, B ;
Kedzierski, J ;
Rim, K ;
Yang, M .
SCIENCE, 2004, 306 (5704) :2057-2060
[82]   MAGNETIZATION OF MESOSCOPIC COPPER RINGS - EVIDENCE FOR PERSISTENT CURRENTS [J].
LEVY, LP ;
DOLAN, G ;
DUNSMUIR, J ;
BOUCHIAT, H .
PHYSICAL REVIEW LETTERS, 1990, 64 (17) :2074-2077
[83]   Block copolymer patterns and templates [J].
Li, Mingqi ;
Ober, Christopher K. .
MATERIALS TODAY, 2006, 9 (09) :30-39
[84]   A Flory-Huggins model based on the Hansen solubility parameters [J].
Lindvig, T ;
Michelsen, ML ;
Kontogeorgis, GM .
FLUID PHASE EQUILIBRIA, 2002, 203 (1-2) :247-260
[85]   Quantitative digital detection of magnetic beads using pseudo-spin-valve rings for multiplexed bioassays [J].
Llandro, J. ;
Hayward, T. J. ;
Morecroft, D. ;
Bland, J. A. C. ;
Castano, F. J. ;
Colin, I. A. ;
Ross, C. A. .
APPLIED PHYSICS LETTERS, 2007, 91 (20)
[86]   Equilibrium and kinetic aspects of the pH-dependent swelling of poly(2-vinylpyridine-co-styrene) microgels [J].
Loxley, A ;
Vincent, B .
COLLOID AND POLYMER SCIENCE, 1997, 275 (12) :1108-1114
[87]   Using a ferrocenylsilane-based block copolymer as a template to produce nanotextured Ag surfaces: uniformly enhanced surface enhanced Raman scattering active substrates [J].
Lu, Jennifer ;
Chamberlin, Danielle ;
Rider, David A. ;
Liu, Maozi ;
Manners, Ian ;
Russell, Thomas P. .
NANOTECHNOLOGY, 2006, 17 (23) :5792-5797
[88]   Self-assembly for semiconductor industry [J].
Lu, Wei ;
Sastry, Ann Marie .
IEEE TRANSACTIONS ON SEMICONDUCTOR MANUFACTURING, 2007, 20 (04) :421-431
[89]   Massively parallel fabrication of repetitive nanostructures: nanolithography for nanoarrays [J].
Luttge, Regina .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2009, 42 (12)
[90]  
Mack C., 2008, Fundamental principles of optical lithography: the science of microfabrication