Design, Fabrication, and Characterization of 3D Hollow Ceramic Nano-Architectures

By Dongchan Jang

Department of Nuclear and Quantum Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, South Korea

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Abstract

Density-strength tradeoff appears to be an inherent limitation for most materials and therefore design of cell topology that mitigates strength decrease with density reduction has been a long-lasting engineering pursue for porous materials. Continuum-mechanics-based analyses on mechanical responses of the conventional porous materials with bending-dominated structures often give the density-strength scaling law following the power-law relationship with exponent of 1.5 or higher, which consequentially determines the upper bound of the specific strength for a material to reach. In this work, we present a new design criterion capable of significantly abating strength degradation in lightweight materials, by successfully combining size-induced strengthening effect in nanomaterials with architectural design of cellular porous materials. Hollow-tube-based 3D ceramic nano-architectures satisfying such criterion were fabricated in large area using Proximity field nano-Patterning (PnP) and atomic layer deposition (ALD). Experimental data from micro-pillar compression confirmed that the strengths of these nano-architectural materials scale with relative densities with power-law exponent of 0.93, hardly observable value in the conventional bending-dominated porous materials. Our discovery of new density-strength scaling law in the nano-architectured materials will contribute to creating new lightweight structural materials attaining unprecedented specific strengths overcoming the conventional limit.

Bio

Donchan Jang Dongchan Jang received the Ph.D. and B.S. degrees in Materials Science and Engineering from the University of Michigan – Ann Arbor and Seoul National University, respectively. From 2008 to 2013, he worked as a postdoc in the Department of Applied Physics and Materials Science at California Institute of Technology. He joined the Department of Nuclear and Quantum Engineering at Korea Advanced Institute of Science and Technology (KAIST) in 2013 as an assistant professor and promoted to associated professor in 2018. His research interests include nanomechanics, focused on understanding mechanical behavior at the nanoscale, and its application for structural and functional materials.

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Cite this work

Researchers should cite this work as follows:

  • Dongchan Jang (2018), "Design, Fabrication, and Characterization of 3D Hollow Ceramic Nano-Architectures," https://nanohub.org/resources/29275.

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Time

Location

2005 Mechanical Engineering Lab, University of Illinois at Urbana-Champaign, Urbana, IL

Tags

Design, Fabrication, and Characterization of 3D Hollow Ceramic Nano-Architectures
  • Design, Fabrication, and Mechanical Characterization of 3D Hollow Ceramic Nano-Architectures 1. Design, Fabrication, and Mecha… 0
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  • Design and Fabrication of Deformable Ceramic 2. Design and Fabrication of Defo… 118.61861861861863
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  • What is the Most Long-Lasting Engineering Issue 3. What is the Most Long-Lasting … 126.55989322655989
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  • The Most Long-lasting Engineering Issue of Human-being 4. The Most Long-lasting Engineer… 157.4240907574241
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  • Strong and deformable lightweight pristine ceramics 5. Strong and deformable lightwei… 202.06873540206874
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  • Overcoming Brittle Failure in Ceramics 6. Overcoming Brittle Failure in … 210.87754421087755
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  • Scientific Backgrounds 7. Scientific Backgrounds 236.00266933600267
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  • Size Effects 8. Size Effects 248.9155822489156
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  • Origin of Size Effects 9. Origin of Size Effects 274.60794127460792
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  • Origin of Size Effects Confinement 10. Origin of Size Effects Confin… 303.57023690357028
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  • Origin of Size Effects Confinement: Plasticity in Single Crystals 11. Origin of Size Effects Confin… 369.73640306973641
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  • Origin of Size Effects Confinement: Weibull Statistics 12. Origin of Size Effects Confin… 473.27327327327328
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  • Origin of Size Effects Confinement: Weibull Statistics 13. Origin of Size Effects Confin… 536.60326993660328
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  • Origin of Size Effects Confinement: Weibull Statistics 14. Origin of Size Effects Confin… 569.40273606940275
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  • Origin of Size Effects 15. Origin of Size Effects 629.46279612946284
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  • Origin of Size Effects Surface 16. Origin of Size Effects Surface 637.93793793793793
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  • Origin of Size Effects Volume- vs Area-Dependent Properties 17. Origin of Size Effects Volume-… 674.87487487487488
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  • Size Effects Origin of Size Effects Volume- vs Area-Dependent Properties 18. Size Effects Origin of Size Ef… 729.39606272939614
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  • Origin of Size Effects Volume- vs Area-Dependent Properties 19. Origin of Size Effects Volume-… 782.91624958291629
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  • Seemingly Contradicted 20. Seemingly Contradicted 906.4064064064064
    00:00/00:00
  • Ceramics Nano-architectures 21. Ceramics Nano-architectures 920.52052052052056
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  • Design Factors to Consider: 1. Integration of Scaling Laws 22. Design Factors to Consider: 1.… 970.7040373707041
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  • Ceramics Nano-architectures Scaling Law for Porous Materials 23. Ceramics Nano-architectures Sc… 987.65432098765439
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  • Ceramics Nano-architectures Scaling Law for Base Materials 24. Ceramics Nano-architectures Sc… 1082.0487153820488
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  • Ceramics Nano-architectures Combination of Two Scaling Laws 25. Ceramics Nano-architectures Co… 1136.7701034367701
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  • Design Factors to Consider: 2. Selection of Base Material 26. Design Factors to Consider: 2.… 1184.7514180847516
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  • Size-dependent Fracture Strengths of Ceramics 27. Size-dependent Fracture Streng… 1225.3920587253922
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  • Design Factors to Consider: 3. Determination of Architectures & Dimensions 28. Design Factors to Consider: 3.… 1324.7914581247915
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  • Geometric Conditions for Buckling Instabilities 29. Geometric Conditions for Buckl… 1348.3817150483817
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  • Geometric Conditions for Buckling Suppression 30. Geometric Conditions for Buckl… 1457.4574574574576
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  • Geometric Conditions for Buckling Suppression 31. Geometric Conditions for Buckl… 1572.3723723723724
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  • Geometric Conditions for Buckling Suppression 32. Geometric Conditions for Buckl… 1596.9636302969636
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  • Design Factors to Consider: 4. Existence of Scalable Fabrication Technique 33. Design Factors to Consider: 4.… 1677.1771771771773
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  • Fabrication Overview 34. Fabrication Overview 1687.7210543877211
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  • Specimen Fabrication Process 35. Specimen Fabrication Process 1726.2262262262263
    00:00/00:00
  • Specimen Fabrication Process 36. Specimen Fabrication Process 1821.2545879212546
    00:00/00:00
  • Mechanical Characterizations 37. Mechanical Characterizations 1838.9723056389723
    00:00/00:00
  • Mechanical Characterization of Ceramic Nano-Architectures 38. Mechanical Characterization of… 1850.7173840507176
    00:00/00:00
  • Ceramics Nano-architectures 39. Ceramics Nano-architectures 1879.4127460794127
    00:00/00:00
  • Mechanical Characterization of Ceramic Nano-Architectures 40. Mechanical Characterization of… 1917.5842509175843
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  • Mechanical Characterization of Ceramic Nano-Architectures 41. Mechanical Characterization of… 1960.6606606606608
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  • Mechanical Characterization of Ceramic Nano-Architectures 42. Mechanical Characterization of… 1997.2639305972641
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  • Important breakthroughs 43. Important breakthroughs 2034.9015682349016
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  • Overcoming Conventional Scaling Law Limit 44. Overcoming Conventional Scalin… 2129.7964631297964
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  • Ceramics Nano-architectures 45. Ceramics Nano-architectures 2190.29029029029
    00:00/00:00
  • How much can we improve further? 46. How much can we improve furthe… 2219.8531865198534
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  • Design Factors 47. Design Factors 2228.0613947280613
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  • Things to Improve: 1.Base Materials 48. Things to Improve: 1.Base Mate… 2255.3553553553556
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  • Further Works 49. Further Works 2259.0924257590923
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  • Things to Improve: 2. Architectural Scaling Law 50. Things to Improve: 2. Architec… 2286.8201534868203
    00:00/00:00
  • Further Works Bending- vs. Stretching-dominated Architectures 51. Further Works Bending- vs. Str… 2313.27994661328
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  • Further Works 52. Further Works 2345.378712045379
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  • Things to Improve: 3. Materials Scaling Law 53. Things to Improve: 3. Material… 2403.5035035035035
    00:00/00:00
  • Intrinsic Toughening Mechanisms at Nanoscale 54. Intrinsic Toughening Mechanism… 2416.4164164164167
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  • Further Works 55. Further Works 2494.8948948948951
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  • Further Works 56. Further Works 2513.27994661328
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  • Summary 57. Summary 2538.8054721388057
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  • Thanks for your attention ! 58. Thanks for your attention ! 2579.2125458792125
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