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Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics

Publication ,  Journal Article
Zhang, Y; Zhao, H; Hassinger, I; Brinson, LC; Schadler, LS; Chen, W
Published in: Integrating Materials and Manufacturing Innovation
December 2015

Nanodielectric materials, consisting of nanoparticle-filled polymers, have the potential to become the dielectrics of the future. Although computational design approaches have been proposed for optimizing microstructure, they need to be tailored to suit the special features of nanodielectrics such as low volume fraction, local aggregation, and irregularly shaped large clusters. Furthermore, key independent structural features need to be identified as design variables. To represent the microstructure in a physically meaningful way, we implement a descriptor-based characterization and reconstruction algorithm and propose a new decomposition and reassembly strategy to improve the reconstruction accuracy for microstructures with low volume fraction and uneven distribution of aggregates. In addition, a touching cell splitting algorithm is employed to handle irregularly shaped clusters. To identify key nanodielectric material design variables, we propose a Structural Equation Modeling approach to identify significant microstructure descriptors with the least dependency. The method addresses descriptor redundancy in the existing approach and provides insight into the underlying latent factors for categorizing microstructure. Four descriptors, i.e., volume fraction, cluster size, nearest neighbor distance, and cluster roundness, are identified as important based on the microstructure correlation functions (CF) derived from images. The sufficiency of these four key descriptors is validated through confirmation of the reconstructed images and simulated material properties of the epoxy-nanosilica system. Among the four key descriptors, volume fraction and cluster size are dominant in determining the dielectric constant and dielectric loss.

Duke Scholars

Published In

Integrating Materials and Manufacturing Innovation

DOI

EISSN

2193-9772

ISSN

2193-9764

Publication Date

December 2015

Volume

4

Issue

1

Start / End Page

209 / 234

Publisher

Springer Science and Business Media LLC

Related Subject Headings

  • 4016 Materials engineering
 

Citation

APA
Chicago
ICMJE
MLA
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Zhang, Y., Zhao, H., Hassinger, I., Brinson, L. C., Schadler, L. S., & Chen, W. (2015). Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics. Integrating Materials and Manufacturing Innovation, 4(1), 209–234. https://doi.org/10.1186/s40192-015-0043-y
Zhang, Yichi, He Zhao, Irene Hassinger, L Catherine Brinson, Linda S. Schadler, and Wei Chen. “Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics.” Integrating Materials and Manufacturing Innovation 4, no. 1 (December 2015): 209–34. https://doi.org/10.1186/s40192-015-0043-y.
Zhang Y, Zhao H, Hassinger I, Brinson LC, Schadler LS, Chen W. Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics. Integrating Materials and Manufacturing Innovation. 2015 Dec;4(1):209–34.
Zhang, Yichi, et al. “Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics.” Integrating Materials and Manufacturing Innovation, vol. 4, no. 1, Springer Science and Business Media LLC, Dec. 2015, pp. 209–34. Crossref, doi:10.1186/s40192-015-0043-y.
Zhang Y, Zhao H, Hassinger I, Brinson LC, Schadler LS, Chen W. Microstructure reconstruction and structural equation modeling for computational design of nanodielectrics. Integrating Materials and Manufacturing Innovation. Springer Science and Business Media LLC; 2015 Dec;4(1):209–234.
Journal cover image

Published In

Integrating Materials and Manufacturing Innovation

DOI

EISSN

2193-9772

ISSN

2193-9764

Publication Date

December 2015

Volume

4

Issue

1

Start / End Page

209 / 234

Publisher

Springer Science and Business Media LLC

Related Subject Headings

  • 4016 Materials engineering