Strain Engineering of Unconventional Crystal-Phase Noble Metal Nanocatalysts

Molecules. 2024 Apr 3;29(7):1617. doi: 10.3390/molecules29071617.

Abstract

The crystal phase, alongside the composition, morphology, architecture, facet, size, and dimensionality, has been recognized as a critical factor influencing the properties of noble metal nanomaterials in various applications. In particular, unconventional crystal phases can potentially enable fascinating properties in noble metal nanomaterials. Recent years have witnessed notable advances in the phase engineering of nanomaterials (PEN). Within the accessible strategies for phase engineering, the effect of strain cannot be ignored because strain can act not only as the driving force of phase transition but also as the origin of the diverse physicochemical properties of the unconventional crystal phase. In this review, we highlight the development of unconventional crystal-phase noble metal nanomaterials within strain engineering. We begin with a short introduction of the unconventional crystal phase and strain effect in noble metal nanomaterials. Next, the correlations of the structure and performance of strain-engineered unconventional crystal-phase noble metal nanomaterials in electrocatalysis are highlighted, as well as the phase transitions of noble metal nanomaterials induced by the strain effect. Lastly, the challenges and opportunities within this rapidly developing field (i.e., the strain engineering of unconventional crystal-phase noble metal nanocatalysts) are discussed.

Keywords: crystal phase; nanocatalysts; phase engineering of nanomaterials (PEN); strain.

Publication types

  • Review

Grants and funding

J.W. acknowledges the support of the Key Project of Xihua University (No. Z222070) and Chengdu Vehicle Environmental Protection Technology Co., Ltd. (No. 2023-CDVEPTKF-04). Q.Z. thanks the National Natural Science Foundation of China (No. 52372227).