Skip to main content
Journal cover image

High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening.

Publication ,  Journal Article
Kevlishvili, I; Vakil, J; Kastner, DW; Huang, X; Craig, SL; Kulik, HJ
Published in: ACS central science
October 2025

Mechanophores are molecules that undergo chemical changes in response to mechanical force, offering unique opportunities in chemistry, materials science, and drug delivery. However, many potential mechanophores remain unexplored. For example, ferrocenes are attractive targets as mechanophores due to their combination of high thermal stability and mechanochemical lability. However, the mechanochemical potential of ferrocene derivatives remains dramatically underexplored despite the synthesis of thousands of structurally diverse complexes. Herein, we report the computational, machine learning guided discovery of synthesizable ferrocene mechanophores. We identify over one hundred potential target ferrocene mechanophores with wide-ranging mechanochemical activity and use data-driven computational screening to identify a select number of promising complexes. We highlight design principles to alter their mechanochemical activation, including regio-controlled transition state stabilization through bulky groups and a change in mechanism through noncovalent ligand-ligand interactions. The computational screening is validated experimentally both at the polymer strand level through sonication experiments and at the network level, where a computationally discovered ferrocene mechanophore cross-linker leads to greater than 4-fold enhancement in material tearing energy. This work establishes a generalizable framework for the high-throughput discovery and rational design of mechanophores and offers insights into structure-activity relationships in mechanically responsive materials.

Duke Scholars

Published In

ACS central science

DOI

EISSN

2374-7951

ISSN

2374-7943

Publication Date

October 2025

Volume

11

Issue

10

Start / End Page

1839 / 1851

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Kevlishvili, I., Vakil, J., Kastner, D. W., Huang, X., Craig, S. L., & Kulik, H. J. (2025). High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening. ACS Central Science, 11(10), 1839–1851. https://doi.org/10.1021/acscentsci.5c00707
Kevlishvili, Ilia, Jafer Vakil, David W. Kastner, Xiao Huang, Stephen L. Craig, and Heather J. Kulik. “High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening.ACS Central Science 11, no. 10 (October 2025): 1839–51. https://doi.org/10.1021/acscentsci.5c00707.
Kevlishvili I, Vakil J, Kastner DW, Huang X, Craig SL, Kulik HJ. High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening. ACS central science. 2025 Oct;11(10):1839–51.
Kevlishvili, Ilia, et al. “High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening.ACS Central Science, vol. 11, no. 10, Oct. 2025, pp. 1839–51. Epmc, doi:10.1021/acscentsci.5c00707.
Kevlishvili I, Vakil J, Kastner DW, Huang X, Craig SL, Kulik HJ. High-Throughput Discovery of Ferrocene Mechanophores with Enhanced Reactivity and Network Toughening. ACS central science. 2025 Oct;11(10):1839–1851.
Journal cover image

Published In

ACS central science

DOI

EISSN

2374-7951

ISSN

2374-7943

Publication Date

October 2025

Volume

11

Issue

10

Start / End Page

1839 / 1851

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences