Bioinspired negative-curvature monomer architecture accelerates on-surface topochemical polymerization

On-surface chemical reactions are often limited by competing requirements for long range molecular order and the local atomic scale dynamics needed for bond formation. In many topochemical reactions, including diacetylene photopolymerization, alkyl-chain ordering provides the required geometric registry but can also restrict the conformational motion necessary for efficient reaction. Here, we show that bioinspired phospholipid architectures accelerate topochemical polymerization at interfaces by introducing multiple, distinct forms of packing frustration that operate on both molecular and nanoscopic scales. Diacetylene phosphocholines (dPCs) and phosphoethanolamines (dPEs), when confined to striped lamellar morphologies on graphitic substrates, undergo substantially faster on-surface photopolymerization than structurally analogous 10,12-tricosadiynoic acid (TCDA) monolayers (t 1/2 ~ 36 min for TCDA, 26 min for dPC, and 3 min for dPE). Molecular dynamics simulations show that topological constraints imposed by the glycerol linkage reduce alkyl-chain segmental order in both phospholipids, increasing the frequency of short separation distances between bond-forming carbons required for reaction. For dPE, typically considered a negative-curvature phospholipid, confinement to a lamellar geometry also frustrates directional headgroup hydrogen bond networks, further increasing reactivity. Together, these results identify complementary mechanisms by which topologically constrained monomers can accelerate on-surface reactions through hierarchical packing frustration. Building on this framework, we design a monomer that exhibits rapid on-surface reaction kinetics.

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Journal
Proceedings of the National Academy of Sciences
Published
2026-10-07
DOI
https://doi.org/10.1073/pnas.2602553123
Primary Topic
Surface Chemistry and Catalysis
Type
article
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article

Bioinspired negative-curvature monomer architecture accelerates on-surface topochemical polymerization

Soumya Paul, Shelley A. Claridge, Joseph Abraham Garfield, Md. Iqbal Hossain et al.
Proceedings of the National Academy of Sciences
Surface Chemistry and Catalysis
article

Bioinspired negative-curvature monomer architecture accelerates on-surface topochemical polymerization

Soumya Paul, Shelley A. Claridge, Joseph Abraham Garfield, Md. Iqbal Hossain, MaryAnne W. Gachema
article en

Abstract

On-surface chemical reactions are often limited by competing requirements for long range molecular order and the local atomic scale dynamics needed for bond formation. In many topochemical reactions, including diacetylene photopolymerization, alkyl-chain ordering provides the required geometric registry but can also restrict the conformational motion necessary for efficient reaction. Here, we show that bioinspired phospholipid architectures accelerate topochemical polymerization at interfaces by introducing multiple, distinct forms of packing frustration that operate on both molecular and nanoscopic scales. Diacetylene phosphocholines (dPCs) and phosphoethanolamines (dPEs), when confined to striped lamellar morphologies on graphitic substrates, undergo substantially faster on-surface photopolymerization than structurally analogous 10,12-tricosadiynoic acid (TCDA) monolayers (t 1/2 ~ 36 min for TCDA, 26 min for dPC, and 3 min for dPE). Molecular dynamics simulations show that topological constraints imposed by the glycerol linkage reduce alkyl-chain segmental order in both phospholipids, increasing the frequency of short separation distances between bond-forming carbons required for reaction. For dPE, typically considered a negative-curvature phospholipid, confinement to a lamellar geometry also frustrates directional headgroup hydrogen bond networks, further increasing reactivity. Together, these results identify complementary mechanisms by which topologically constrained monomers can accelerate on-surface reactions through hierarchical packing frustration. Building on this framework, we design a monomer that exhibits rapid on-surface reaction kinetics.

Proceedings of the National Academy of SciencesVol. 123(41)
Purdue University West Lafayette (US)
Openalex Percentile: Top 23%
Surface Chemistry and Catalysis
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Bioinspired negative-curvature monomer architecture accelerates on-surface topochemical polymerization — Soumya Paul, Shelley A. Claridge, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS