4.7 Article

Synthesis and Crystal-Phase Engineering of Mesoporous Palladium-Boron Alloy Nanoparticles

期刊

ACS CENTRAL SCIENCE
卷 6, 期 12, 页码 2347-2353

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscentsci.0c01262

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资金

  1. Natural Science Foundation of Jiangsu Province [BK20180723, BK20191366]
  2. Jiangsu Specially Appointed Professor Plan
  3. program of Jiangsu Province Innovation Team
  4. Priority Academic Program Development of Jiangsu Higher Education Institutions
  5. National, Local Joint Engineering Research Center of Biomedical Functional Materials
  6. Swedish Research Council (VR) [2016-04625]
  7. Swedish Research Council [2016-04625] Funding Source: Swedish Research Council
  8. Vinnova [2016-04625] Funding Source: Vinnova

向作者/读者索取更多资源

Rational design and synthesis of noble metal nanomaterials with desired crystal phases (atomic level) and controllable structures/morphologies (mesoscopic level) are paramount for modulating their physiochemical properties. However, it is challenging to simultaneously explore atomic crystal-phase structures and ordered mesoscopic morphologies. Here, we report a simple synergistic templating strategy for the preparation of palladium-boron (Pd-B) nanoparticles with precisely controllable crystal-phases and highly ordered mesostructures. The engineering of crystal-phase structures at atomic levels is achieved by interstitially inserting metallic B atoms into face-centered cubic mesoporous Pd (fcc-mesoPd) confined in a mesoporous silica template. With the gradual insertion of B atoms, fcc-mesoPd is transformed into fcc-mesoPd(5)B, hcp-mesoPd(2)B with randomly distributed B atoms (hcp-mesoPd(2)B-r), and hcp-mesoPd(2)B with an atomically ordered B sequence (hcp-mesoPd(2)B-o) while preserving well-defined mesostructures. This synergistic templating strategy can be extended to engineer crystal-phase structures with various mesostructures/morphologies, including nanoparticles, nanobundles, and nanorods. Moreover, we investigate the crystal-phase-dependent catalytic performance toward the reduction reaction of p-nitrophenol and find that hcp-mesoPd(2)B-o displays much better catalytic activity. This work thus paves a new way for the synthesis of hcp-Pd2B nanomaterials with mesoscopically ordered structure/morphology and offers new insights of fcc-to-hcp evolution mechanisms which could be applied on other noble metal-based nanomaterials for various targeted applications.

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