Advanced search
Start date
Betweenand


Chiral phonons in microcrystals and nanofibrils of biomolecules

Full text
Author(s):
Show less -
Choi, Won Jin ; Yano, Keiichi ; Cha, Minjeong ; Colombari, Felippe M. ; Kim, Ji-Young ; Wang, Yichun ; Lee, Sang Hyun ; Sun, Kai ; Kruger, John M. ; de Moura, Andre F. ; Kotov, Nicholas A.
Total Authors: 11
Document type: Journal article
Source: Nature Photonics; v. 16, n. 5, p. 9-pg., 2022-03-21.
Abstract

Chiral phonons-long-range lattice vibrations with rotational motion of atoms-are observed by terahertz chiroptical spectroscopy in biocrystals. Terahertz circular dichroism peaks between 0.2 and 2.0 THz clearly identify the chirality of these phonons in various microcrystalline and nanofibrils of biomolecules. Chiral phonons are concerted mirror-symmetric movements of atomic groups connected by covalent and intermolecular bonds. Such lattice vibrations in crystals of biomolecules should be highly specific to their short- and long-range organizations, but their chiroptical signatures and structure-property relationships remain uncertain. Here we show that terahertz chiroptical spectroscopy enables the registration and attribution of chiral phonons for microscale and nanoscale crystals of amino acids and peptides. Theoretical analysis and computer simulations indicate that sharp mirror-symmetric bands observed for left- and right-handed enantiomers originate from the collective vibrations of biomolecules interconnected by hydrogen bonds into helical chains. The sensitivity of chiral phonons to minute structural changes can be used to identify physical and chemical differences in seemingly identical formulations of dipeptides used in health supplements. The generality of these findings is demonstrated by chiral phonons observed for amyloid nanofibrils of insulin. Their spectral signatures and polarization rotation strongly depend on their maturation stage, which opens a new door for medical applications of terahertz photonics. (AU)

FAPESP's process: 12/15147-4 - Computational study of thermodynamic association of self­-assembled systems
Grantee:André Farias de Moura
Support Opportunities: Regular Research Grants
FAPESP's process: 13/07296-2 - CDMF - Center for the Development of Functional Materials
Grantee:Elson Longo da Silva
Support Opportunities: Research Grants - Research, Innovation and Dissemination Centers - RIDC