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This content will become publicly available on January 17, 2026

Title: Launching Graphene into 3D Space: Symmetry, Topology, and Strategies for Bottom-Up Synthesis of Schwarzites
Schwarzites are hypothetical carbon allotropes in the form of a continuous negatively curved surface with three-dimensional periodicity. These materials of the future attract interest because of their anticipated large surface area per volume, high porosity, tunable electric conductivity, and excellent mechanical strength combined with light weight. A three-decade-long history attempting schwarzite synthesis from gas-phase carbon atoms went without success. Design of schwarzites is both a digital art and the science of placing tiles of sp2-carbon polygons on mathematically defined triply periodic minimal surfaces. The knowledge of how to connect polygons in sequence using the rules of symmetry unlocks paths for the bottom-up synthesis of schwarzites by organic chemistry methods. Schwarzite tiling by heptagons is systematically analyzed and classified by symmetry and topology. For the first time, complete plans for the bottom-up synthesis of many schwarzites are demonstrated. A trimer of heptagons is suggested as the key building block for most synthetic schemes.  more » « less
Award ID(s):
1955130
PAR ID:
10584892
Author(s) / Creator(s):
Publisher / Repository:
ACS Publications
Date Published:
Journal Name:
The Journal of Organic Chemistry
Volume:
90
Issue:
2
ISSN:
0022-3263
Page Range / eLocation ID:
971 to 983
Subject(s) / Keyword(s):
Carbon nanomaterials Chemical structure Cyclization Group theory Mathematical methods
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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