4.8 Article

Ginkgo seed shell provides a unique model for bioinspired design

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2211458119

关键词

ginkgo seed shell; mechanical design; weakly anisotropic; fracture mechanism; bioinspired

资金

  1. National Key Research and Development Program of China [2021YFA0715700]
  2. National Science Fund for Distinguished Young Scholars [52125302]
  3. National Natural Science Foundation of China [22075009, 51961130388, 21875010, 51522301, 21273017, 51103004, 51903125]
  4. Newton Advanced Fellowship [NAF\R1\191235]
  5. Beijing Natural Science Foundation [JQ19006]
  6. 111 Project [B14009]
  7. China Postdoctoral Science Foundation [2018M640043, 2019T120038]
  8. Program of Higher-level Talents of IMU [10000-21311201/007]

向作者/读者索取更多资源

The weakly anisotropic structure of Ginkgo biloba seed shell exhibits excellent crack resistance in all directions, rivaling other highly anisotropic natural materials. Ginkgo's unique toughening mechanism of pit-guided crack propagation provides guidance for the design of high-performance bulk materials.
tectures, resulting in excellent damage tolerance. Such highly anisotropic structures, however, also provide an easy path for crack propagation, often leading to catastrophic fracture as evidenced, for example, by wood splitting. Here, we describe the weakly anisotropic structure of Ginkgo biloba (ginkgo) seed shell, which has excellent crack resistance in different directions. Ginkgo seed shell is composed of tightly packed polygonal sclereids with cell walls in which the cellulose microfibrils are oriented in a helicoidal pattern. We found that the sclereids contain distinct pits, special fine tubes like a screw fastener, that interlock the helicoidal cell walls together. As a result, ginkgo seed shell demonstrates crack resistance in all directions, exhibiting specific fracture toughness that can rival other highly anisotropic natural materials, such as wood, bone, insect cuticle, and nacre. In situ characterization reveals ginkgo's unique toughening mechanism: pitguided crack propagation. This mechanism forces the crack to depart from the weak compound middle lamella and enter into the sclereid, where the helicoidal cell wall significantly inhibits crack growth by the cleavage and breakage of the fibril-based cell walls. Ginkgo's toughening mechanism could provide guidelines for a new bioinspired strategy for the design of high-performance bulk materials.

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