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Nanoscale Three-Dimensional Network Structure of a Mesoporous Particle Unveiled via Adaptive Multidistance Coherent X-ray Tomography.
Lee, Sung Yun; Cho, Do Hyung; Song, Sung Chan; Shin, Jaeyong; Hwang, Junha; Park, Eunyoung; Lee, Su Yong; Kim, Seongseop; Lee, Jinwoo; Song, Changyong.
Affiliation
  • Lee SY; Department of Physics, POSTECH, Pohang 37673, Korea.
  • Cho DH; Photon Science Center, POSTECH, Pohang 37673, Korea.
  • Song SC; Center for Ultrafast Science on Quantum Matter, Max Planck POSTECH Korea Research Initiative, Pohang 37673, Korea.
  • Shin J; Department of Physics, POSTECH, Pohang 37673, Korea.
  • Hwang J; Photon Science Center, POSTECH, Pohang 37673, Korea.
  • Park E; Center for Ultrafast Science on Quantum Matter, Max Planck POSTECH Korea Research Initiative, Pohang 37673, Korea.
  • Lee SY; Department of Materials Science and Engineering, POSTECH, Pohang 37673, Korea.
  • Kim S; Department of Physics, POSTECH, Pohang 37673, Korea.
  • Lee J; Photon Science Center, POSTECH, Pohang 37673, Korea.
  • Song C; Center for Ultrafast Science on Quantum Matter, Max Planck POSTECH Korea Research Initiative, Pohang 37673, Korea.
ACS Nano ; 17(22): 22488-22498, 2023 Nov 28.
Article de En | MEDLINE | ID: mdl-37851941
ABSTRACT
Mesoporous nanoparticles provide rich platforms to devise functional materials by customizing the three-dimensional (3D) structures of nanopores. With the pore network as a key tuning parameter, the noninvasive and quantitative characterization of these 3D structures is crucial for the rational design of functional materials. This has prompted researchers to develop versatile nanoprobes with a high penetration power to inspect various specimens sized a few micrometers at nanoscale 3D resolutions. Here, with adaptive phase retrievals on independent data sets with different sampling frequencies, we introduce multidistance coherent X-ray tomography as a noninvasive and quantitative nanoprobe to realize high-resolution 3D imaging of micrometer-sized specimens. The 3D density distribution of an entire mesoporous silica nanoparticle was obtained at 13 nm 3D resolution for quantitative physical and morphological analyses of its 3D pore structure. The morphological features of the whole 3D pore network and pore connectivity were examined to gain insight into the potential functions of the particles. The proposed multidistance tomographic imaging scheme with quantitative structural analyses is expected to advance studies of functional materials by facilitating their structure-based rational design.
Mots clés

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: ACS Nano Année: 2023 Type de document: Article

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: ACS Nano Année: 2023 Type de document: Article
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