TY - JOUR
T1 - Toward Informed Design of Nanomaterials
T2 - A Mechanistic Analysis of Structure-Property-Function Relationships for Faceted Nanoscale Metal Oxides
AU - Rudel, Holly E.
AU - Lane, Mary Kate M.
AU - Muhich, Christopher L.
AU - Zimmerman, Julie B.
N1 - Funding Information:
This work was supported by the National Science Foundation Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT; Grant ERC-1449500) and the National Institute of Environmental Health Sciences of the National Institutes of Health Superfund Research Center Metals and Metals Mixtures: Cognitive Aging Remediation, and Exposure Sources (MEMCARE; Grant P42ES030990). We thank Dr. Xiaopeng Huang and Dr. Hailiang Wang for their helpful correspondences during the writing of this work.
Funding Information:
This work was supported by the National Science Foundation Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT; Grant ERC-1449500) and the National Institute of Environmental Health Sciences of the National Institutes of Health Superfund Research Center Metals and Metals Mixtures: Cognitive Aging, Remediation, and Exposure Sources (MEMCARE; Grant P42ES030990). We thank Dr. Xiaopeng Huang and Dr. Hailiang Wang for their helpful correspondences during the writing of this work.
Publisher Copyright:
© 2020 American Chemical Society.
PY - 2020/12/22
Y1 - 2020/12/22
N2 - Nanoscale metal oxides (NMOs) have found wide-scale applicability in a variety of environmental fields, particularly catalysis, gas sensing, and sorption. Facet engineering, or controlled exposure of a particular crystal plane, has been established as an advantageous approach to enabling enhanced functionality of NMOs. However, the underlying mechanisms that give rise to this improved performance are often not systematically examined, leading to an insufficient understanding of NMO facet reactivity. This critical review details the unique electronic and structural characteristics of commonly studied NMO facets and further correlates these characteristics to the principal mechanisms that govern performance in various catalytic, gas sensing, and contaminant removal applications. General trends of facet-dependent behavior are established for each of the NMO compositions, and selected case studies for extensions of facet-dependent behavior, such as mixed metals, mixed-metal oxides, and mixed facets, are discussed. Key conclusions about facet reactivity, confounding variables that tend to obfuscate them, and opportunities to deepen structure-property-function understanding are detailed to encourage rational, informed design of NMOs for the intended application.
AB - Nanoscale metal oxides (NMOs) have found wide-scale applicability in a variety of environmental fields, particularly catalysis, gas sensing, and sorption. Facet engineering, or controlled exposure of a particular crystal plane, has been established as an advantageous approach to enabling enhanced functionality of NMOs. However, the underlying mechanisms that give rise to this improved performance are often not systematically examined, leading to an insufficient understanding of NMO facet reactivity. This critical review details the unique electronic and structural characteristics of commonly studied NMO facets and further correlates these characteristics to the principal mechanisms that govern performance in various catalytic, gas sensing, and contaminant removal applications. General trends of facet-dependent behavior are established for each of the NMO compositions, and selected case studies for extensions of facet-dependent behavior, such as mixed metals, mixed-metal oxides, and mixed facets, are discussed. Key conclusions about facet reactivity, confounding variables that tend to obfuscate them, and opportunities to deepen structure-property-function understanding are detailed to encourage rational, informed design of NMOs for the intended application.
KW - catalysis
KW - crystal facet
KW - facet engineering
KW - gas sensing
KW - informed design
KW - nanoscale metal oxides
KW - sorption
KW - structure-property-function relationships
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U2 - 10.1021/acsnano.0c08356
DO - 10.1021/acsnano.0c08356
M3 - Review article
C2 - 33237735
AN - SCOPUS:85097807133
SN - 1936-0851
VL - 14
SP - 16472
EP - 16501
JO - ACS nano
JF - ACS nano
IS - 12
ER -