Mineralized sclerites in the gorgonian coral <i>Leptogorgia chilensis</i> as a natural jamming system

C Chenhao Hu (Department of Materials Science and Engineering, University of Pennsylvania) R Ravi Tutika (Department of Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech) Z Zhifei Deng (Department of Mechanical Engineering, Virginia Tech) Z Zian Jia (Department of Materials Science and Engineering, University of Pennsylvania) L Liuni Chen (Department of Materials Science and Engineering, University of Pennsylvania) H Hongshun Chen (Department of Mechanical Engineering, Virginia Tech) Y Yang Geng (Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States) X Xianghui Xiao (National Synchrotron Light Source II) P Pavel D. Shevchenko (Advanced Photon Source, Argonne National Laboratory) C Christoph Pierre (Marine Operations, University of California) J James C. Weaver (Wyss Institute for Biologically Inspired Engineering, Harvard University) D Daniel Baum (Department of Visual and Data-Centric Computing, Zuse Institute Berlin) M Michael D. Bartlett (Department of Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech) L Ling Li

Abstract

The soft corals (Cnidaria, Octocorallia), a diverse group of colonial marine invertebrates, can reversibly tune their body stiffness in response to external stimuli. This capability is attributed to their dynamic skeletal systems, which consist of thousands of mineralized skeletal elements, called sclerites, embedded within a gel-like matrix that swells/deswells and unjams/jams the sclerites, thus modulating skeletal stiffness. While sclerite morphology is widely used for species identification, its role in the mechanical performance of a soft coral’s skeletal system is largely unknown. Here, we investigated structure-jamming relationships in sclerite-based skeletal architectures using the red gorgonian octocoral Leptogorgia chilensis as a model system. The sclerites of L. chilensis exhibit a shaft-like geometry with two axial branches and two sets of triradiate side branches, which are aligned with the crystallographic symmetry of the constituent magnesium-containing calcite. By combining multiscale three-dimensional (3D) structural characterization, parametric geometrical modeling, 3D printing, mechanical testing, and discrete element simulations, we demonstrate how sclerite geometry achieves a balanced jamming performance in terms of stiffness, weight, strength, and fracture resistance in comparison to alternative geometries parametrically modified from the native sclerites (e.g., changes in the length and number of side branches). We also found that these performance metrics are achieved through the effective interlocking among side and axial branches, which is further enhanced by the fractal-like microscopic spikes on the branch tips. The findings in this natural jamming system offer insights for designing synthetic mechanotunable material architectures for a wide range of applications, from soft robotics to mechanical dampeners.

Article Details

Volume / Issue Vol. 122, Issue 44
Published November 04, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

C

Chenhao Hu

Department of Materials Science and Engineering, University of Pennsylvania

R

Ravi Tutika

Department of Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech

Z

Zhifei Deng

Department of Mechanical Engineering, Virginia Tech

Z

Zian Jia

Department of Materials Science and Engineering, University of Pennsylvania

L

Liuni Chen

Department of Materials Science and Engineering, University of Pennsylvania

H

Hongshun Chen

Department of Mechanical Engineering, Virginia Tech

Y

Yang Geng

Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, Pennsylvania 19104, United States

X

Xianghui Xiao

National Synchrotron Light Source II

P

Pavel D. Shevchenko

Advanced Photon Source, Argonne National Laboratory

C

Christoph Pierre

Marine Operations, University of California

J

James C. Weaver

Wyss Institute for Biologically Inspired Engineering, Harvard University

D

Daniel Baum

Department of Visual and Data-Centric Computing, Zuse Institute Berlin

M

Michael D. Bartlett

Department of Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech

L

Ling Li