Strain Engineering of Ion-Coordinated Nanochannels in Nanocellulose

Nano Lett. 2024 May 29;24(21):6262-6268. doi: 10.1021/acs.nanolett.4c00867. Epub 2024 May 14.

Abstract

Expanding the interlayer spacing plays a significant role in improving the conductivity of a cellulose-based conductor. However, it remains a challenge to regulate the cellulose nanochannel expanded by ion coordination. Herein, starting from multiscale mechanics, we proposed a strain engineering method to regulate the interlayer spacing of the cellulose nanochannels. First-principles calculations were conducted to select the most suitable ions for coordination. Large-scale molecular dynamics simulations were performed to reveal the mechanism of interlayer spacing expansion by the ion cross-linking. Combining the shear-lag model, we established the relationship between interfacial cross-link density and interlayer spacing of an ion-coordinated cellulose nanochannel. Consequently, fast ion transport and current regulation were realized via the strain engineering of nanochannels, which provides a promising strategy for the current regulation of a cellulose-based conductor.

Keywords: cellulose nanochannel; ion cross-linking; ion transport; nanocellulose; strain engineering.