TY - JOUR
T1 - Atomistic-Benchmarking towards a protocol development for rapid quantitative metrology of piezoelectric biomolecular materials
AU - O'Donnell, Joseph
AU - Guerin, Sarah
AU - Makam, Pandeeswar
AU - Cazade, Pierre Andre
AU - Haq, Ehtsham Ul
AU - Tao, Kai
AU - Gazit, Ehud
AU - Silien, Christophe
AU - Soulimane, Tewfik
AU - Thompson, Damien
AU - Tofail, Syed A.M.
N1 - Publisher Copyright:
© 2020
PY - 2020/12
Y1 - 2020/12
N2 - Biomolecular crystals are an emerging class of piezoelectric materials that are both biocompatible and biodegradable, which enables their use in biomedical applications and smart devices while ensuring eco-friendly production and disposal. However, accurate quantification of the piezoelectric response of soft sub-micron crystals remains a significant challenge, as conventional piezoelectric measurement techniques are suited to ceramics, thin films, and polymers. Here, we demonstrate the use of a novel piezoresponse force microscopy (PFM) methodology for robust, reliable quantification of the electromechanical response of biomolecular crystals. As a strong test of high accuracy and precision, we show that PFM, integrated with quantum mechanical (QM) density functional theory (DFT) calculations, can distinguish the piezoelectric responses of near-isopiezoelectric amino acid crystals. We show that a statistical approach, combined with experimental best practices, provides effective piezoelectric coefficients of biomolecular single crystals accurately and unambiguously. This work opens the door to high-throughput screening and characterisation of natural and engineered soft piezoelectric crystals for eco-friendly energy harvesters and biodegradable medical implants, reducing dependence on lead-based and rare-earth-containing piezoelectric materials.
AB - Biomolecular crystals are an emerging class of piezoelectric materials that are both biocompatible and biodegradable, which enables their use in biomedical applications and smart devices while ensuring eco-friendly production and disposal. However, accurate quantification of the piezoelectric response of soft sub-micron crystals remains a significant challenge, as conventional piezoelectric measurement techniques are suited to ceramics, thin films, and polymers. Here, we demonstrate the use of a novel piezoresponse force microscopy (PFM) methodology for robust, reliable quantification of the electromechanical response of biomolecular crystals. As a strong test of high accuracy and precision, we show that PFM, integrated with quantum mechanical (QM) density functional theory (DFT) calculations, can distinguish the piezoelectric responses of near-isopiezoelectric amino acid crystals. We show that a statistical approach, combined with experimental best practices, provides effective piezoelectric coefficients of biomolecular single crystals accurately and unambiguously. This work opens the door to high-throughput screening and characterisation of natural and engineered soft piezoelectric crystals for eco-friendly energy harvesters and biodegradable medical implants, reducing dependence on lead-based and rare-earth-containing piezoelectric materials.
KW - Amino acid and peptide technology
KW - Bio-organic piezoelectricity
KW - Chiral crystals
KW - Energy harvesting
KW - Predictive materials modelling
KW - Racemic crystals
UR - http://www.scopus.com/inward/record.url?scp=85090411227&partnerID=8YFLogxK
U2 - 10.1016/j.apmt.2020.100818
DO - 10.1016/j.apmt.2020.100818
M3 - Article
AN - SCOPUS:85090411227
SN - 2352-9407
VL - 21
JO - Applied Materials Today
JF - Applied Materials Today
M1 - 100818
ER -