Quasi-random nanostructured material systems (NMSs) are emerging engineered material systems via cost-effective, scalable bottom-up processes, such as the phase separation of polymer mixtures or the mechanical self-assembly based on thin-film wrinkling. Current development of functional quasi-random NMSs mainly follows a sequential strategy without considering the fabrication conditions in nanostructure optimization, which limits the feasibility of the optimized design for large-scale, parallel nanomanufacturing using bottom-up processes. We propose a novel design methodology for designing quasi-random NMSs that employs spectral density function (SDF) to concurrently optimize the nanostructure and design the corresponding nanomanufacturing conditions of a bottom-up process. Alternative to the well-known correlation functions for characterizing the structural correlation of NMSs, the SDF provides a convenient and informative design representation to bridge the gap between processing-structure and structure-performance relationships, to enable fast explorations of optimal fabricable nanostructures, and to exploit the stochastic nature of manufacturing processes. In this paper, we first introduce the SDF as a non-deterministic design representation for quasi-random NMSs, compared with the two-point correlation function. Efficient reconstruction methods for quasi-random NMSs are developed for handling different morphologies, such as the channel-type and particle-type, in simulation-based design. The SDF based computational design methodology is illustrated by the optimization of quasi-random light-trapping nanostructures in thin-film solar cells for both channel-type and particle-type NMSs. Finally, the concurrent design strategy is employed to optimize the quasi-random light-trapping structure manufactured via scalable wrinkle nanolithography process.
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ASME 2016 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference
August 21–24, 2016
Charlotte, North Carolina, USA
Conference Sponsors:
- Design Engineering Division
- Computers and Information in Engineering Division
ISBN:
978-0-7918-5011-4
PROCEEDINGS PAPER
Characterization and Design of Functional Quasi-Random Nanostructured Materials Using Spectral Density Function
Shuangcheng Yu,
Shuangcheng Yu
Northwestern University, Evanston, IL
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Yichi Zhang,
Yichi Zhang
Northwestern University, Evanston, IL
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Chen Wang,
Chen Wang
Northwestern University, Evanston, IL
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Won-kyu Lee,
Won-kyu Lee
Northwestern University, Evanston, IL
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Biqin Dong,
Biqin Dong
Northwestern University, Evanston, IL
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Teri W. Odom,
Teri W. Odom
Northwestern University, Evanston, IL
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Cheng Sun,
Cheng Sun
Northwestern University, Evanston, IL
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Wei Chen
Wei Chen
Northwestern University, Evanston, IL
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Shuangcheng Yu
Northwestern University, Evanston, IL
Yichi Zhang
Northwestern University, Evanston, IL
Chen Wang
Northwestern University, Evanston, IL
Won-kyu Lee
Northwestern University, Evanston, IL
Biqin Dong
Northwestern University, Evanston, IL
Teri W. Odom
Northwestern University, Evanston, IL
Cheng Sun
Northwestern University, Evanston, IL
Wei Chen
Northwestern University, Evanston, IL
Paper No:
DETC2016-60118, V02BT03A012; 11 pages
Published Online:
December 5, 2016
Citation
Yu, S, Zhang, Y, Wang, C, Lee, W, Dong, B, Odom, TW, Sun, C, & Chen, W. "Characterization and Design of Functional Quasi-Random Nanostructured Materials Using Spectral Density Function." Proceedings of the ASME 2016 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. Volume 2B: 42nd Design Automation Conference. Charlotte, North Carolina, USA. August 21–24, 2016. V02BT03A012. ASME. https://doi.org/10.1115/DETC2016-60118
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