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April 3, 2026Nature Communications0 citationsOpen Access

Spontaneous crack healing in calcite reveals the influence of dynamic strain evolution and surface chemistry

MDMichelle DevoeHLHarrison LisabethSNSeiji Nakagawa

Key Points

  • The research aims to understand the mechanics of fracture healing in calcite and the influence of strain and surface chemistry on this process.
  • Applied microfocused synchrotron Laue X-ray diffraction and infrared spectroscopy.
  • Investigated a 1mm-thick calcite crystal subjected to controlled loading in a double-torsion device.
  • Monitored residual strain fields around the crack tip over a 44-hour period post-load removal.
  • Observed a progressive increase in compressive strain perpendicular to the crack plane.
  • Noted enhanced water accumulation at the healed interface through infrared spectroscopy.
  • Established a link between strain evolution and surface chemistry, indicating that spontaneous crack healing is driven by dynamic processes.

Abstract

Abstract The mechanics of fracture healing in calcite remain poorly constrained yet are fundamental to managing fluid transport in geothermal reservoirs and hydrocarbon systems. Here, we apply microfocused synchrotron Laue X-ray diffraction and infrared spectroscopy to investigate subcritical crack healing in a 1 mm-thick calcite crystal subjected to controlled loading in a double-torsion device. Over a 44-hour period following load removal, we map the evolution of residual strain fields surrounding the crack tip and observe a progressive increase in compressive strain perpendicular to the crack plane accompanied by infrared spectroscopic signatures that reveal enhanced accumulation of water at the healed interface. The correlation between strain evolution and surface chemistry suggests that spontaneous crack healing in calcite is driven by dynamic anelastic relaxation coupled with irreversible fluid-mineral interactions. These findings offer insight into time-dependent crack closure processes in carbonates and highlight the role of chemically-mediated plasticity in subsurface fracture evolution.

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Cite This Study

Devoe et al. (2026) studied this question.

synapsesocial.com/papers/69cf5ea85a333a821460d386https://doi.org/10.1038/s41467-026-71110-x
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