TY - JOUR
T1 - Molecular Engineering of Ordered Piezoelectric Sulfonic Acid-Containing Assemblies
AU - Yuan, Hui
AU - Cazade, Pierre Andre
AU - Zhou, Shuaikang
AU - Shimon, Linda J.W.
AU - Yuan, Chengqian
AU - Tan, Dan
AU - Liu, Cunshun
AU - Fan, Wei
AU - Thangavel, Vijayakanth
AU - Cao, Yi
AU - Thompson, Damien
AU - Yan, Xuehai
AU - Yang, Rusen
AU - Xue, Bin
AU - Gazit, Ehud
N1 - Publisher Copyright:
© 2023 The Authors. Small published by Wiley-VCH GmbH.
PY - 2024/4/25
Y1 - 2024/4/25
N2 - Sulfonic acid-containing bioorganic monomers with wide molecular designability and abundant hydrogen bonding sites hold great potential to design diverse functional biocrystals but have so far not been explored for piezoelectric energy harvesting applications due to the lack of strategies to break the centrosymmetry of their assemblies. Here, a significant molecular packing transformation from centrosymmetric into non-centrosymmetric conformation by the addition of an amide terminus in the sulfonic acid-containing bioorganic molecule is demonstrated, allowing a high electromechanical response. The amide-functionalized molecule self-assembles into a polar supramolecular parallel β-sheet-like structure with a high longitudinal piezoelectric coefficient d11 = 15.9 pm V−1 that produces the maximal open-circuit voltage of >1 V and the maximal power of 18 nW in nanogenerator devices pioneered. By contrast, molecules containing an amino or a cyclohexyl terminus assemble into highly symmetric 3D hydrogen bonding diamondoid-like networks or 2D double layer structures that show tunable morphologies, thermostability, and mechanical properties but non-piezoelectricity. This work not only presents a facile approach to achieving symmetry transformation of bioorganic assemblies but also demonstrates the terminal group and the property correlation for tailor-made design of high-performance piezoelectric biomaterials.
AB - Sulfonic acid-containing bioorganic monomers with wide molecular designability and abundant hydrogen bonding sites hold great potential to design diverse functional biocrystals but have so far not been explored for piezoelectric energy harvesting applications due to the lack of strategies to break the centrosymmetry of their assemblies. Here, a significant molecular packing transformation from centrosymmetric into non-centrosymmetric conformation by the addition of an amide terminus in the sulfonic acid-containing bioorganic molecule is demonstrated, allowing a high electromechanical response. The amide-functionalized molecule self-assembles into a polar supramolecular parallel β-sheet-like structure with a high longitudinal piezoelectric coefficient d11 = 15.9 pm V−1 that produces the maximal open-circuit voltage of >1 V and the maximal power of 18 nW in nanogenerator devices pioneered. By contrast, molecules containing an amino or a cyclohexyl terminus assemble into highly symmetric 3D hydrogen bonding diamondoid-like networks or 2D double layer structures that show tunable morphologies, thermostability, and mechanical properties but non-piezoelectricity. This work not only presents a facile approach to achieving symmetry transformation of bioorganic assemblies but also demonstrates the terminal group and the property correlation for tailor-made design of high-performance piezoelectric biomaterials.
KW - brokencentrosymmetry
KW - energy harvesting
KW - molecular packing
KW - physical property
KW - sulfonic acid-containing biomolecules
UR - http://www.scopus.com/inward/record.url?scp=85179317976&partnerID=8YFLogxK
U2 - 10.1002/smll.202309493
DO - 10.1002/smll.202309493
M3 - Article
AN - SCOPUS:85179317976
SN - 1613-6810
VL - 20
JO - Small
JF - Small
IS - 17
M1 - 2309493
ER -