TY - JOUR
T1 - Bridging the gas and condensed phases for metal-atom encapsulating silicon- and germanium-cage superatoms
T2 - electrical properties of assembled superatoms
AU - Yokoyama, Takaho
AU - Nakajima, Atsushi
N1 - Funding Information:
Authors are grateful to Mr T. Chiba (Keio Univ.) for his support of electrical characterization of M@Si16 assembled films along with theoretical calculations, to Mr K. Nakamura (Keio Univ.) for his support of electrical characterization of M@Ge16 assembled films, and to Ms K. Tanaka (Center Service Facilities for Science and Technology Research, Keio Univ.) for SEM measurements. This work is partly supported by JSPS KAKENHI of Grants-in-Aid for Scientific Research (A) No. 19H00890, Challenging Research (Pioneering) No. 17H06226, Transformative Research Areas (A) “Hyper-Ordered Structures Science” (21H05573), and of Research Fellowships for Young Scientists Grant Number 19J22141.
Funding Information:
Authors are grateful to Mr T. Chiba (Keio Univ.) for his support of electrical characterization of M@Si assembled films along with theoretical calculations, to Mr K. Nakamura (Keio Univ.) for his support of electrical characterization of M@Ge assembled films, and to Ms K. Tanaka (Center Service Facilities for Science and Technology Research, Keio Univ.) for SEM measurements. This work is partly supported by JSPS KAKENHI of Grants-in-Aid for Scientific Research (A) No. 19H00890, Challenging Research (Pioneering) No. 17H06226, Transformative Research Areas (A) “Hyper-Ordered Structures Science” (21H05573), and of Research Fellowships for Young Scientists Grant Number 19J22141. 16 16
Publisher Copyright:
© 2023 The Royal Society of Chemistry.
PY - 2023/3/3
Y1 - 2023/3/3
N2 - With the development of nanocluster (NC) synthesis methods in the gas phase, atomically precise NCs composed of a finite number of metal and semiconductor atoms have emerged. NCs are expected to be the smallest units for nanomaterials with various functions, such as catalysts, optoelectronic materials, and electromagnetic devices. The exploration of a stable NC called a magic number NC has revealed a couple of important factors, such as a highly symmetric geometric structure and an electronic shell closure, and a magic number behavior is often enhanced by mixing additional elements. A synergetic effect between geometric and electronic structures leads to the formation of chemically robust NC units called superatoms (SAs), which act as individual units assembled as thin films. The agglomeration of non-ligated bare SAs is desirable in fabricating the assembled SAs associated with intrinsic SA nature. The recent development of an intensive pulsed magnetron sputtering method opens up the scalable synthesis of SAs in the gas phase, enabling the fabrication of SA assembly coupled with the non-destructive deposition of a soft-landing technique. This perspective describes our recent progress in the investigation of the formation of binary cage SA (BCSA) assembled thin films composed of metal-atom encapsulating silicon-cage SAs (M@Si16) and germanium-cage SAs (M@Ge16), with a focus on their electrical properties associated with a conduction mechanism toward the development of new functional nanoscale materials.
AB - With the development of nanocluster (NC) synthesis methods in the gas phase, atomically precise NCs composed of a finite number of metal and semiconductor atoms have emerged. NCs are expected to be the smallest units for nanomaterials with various functions, such as catalysts, optoelectronic materials, and electromagnetic devices. The exploration of a stable NC called a magic number NC has revealed a couple of important factors, such as a highly symmetric geometric structure and an electronic shell closure, and a magic number behavior is often enhanced by mixing additional elements. A synergetic effect between geometric and electronic structures leads to the formation of chemically robust NC units called superatoms (SAs), which act as individual units assembled as thin films. The agglomeration of non-ligated bare SAs is desirable in fabricating the assembled SAs associated with intrinsic SA nature. The recent development of an intensive pulsed magnetron sputtering method opens up the scalable synthesis of SAs in the gas phase, enabling the fabrication of SA assembly coupled with the non-destructive deposition of a soft-landing technique. This perspective describes our recent progress in the investigation of the formation of binary cage SA (BCSA) assembled thin films composed of metal-atom encapsulating silicon-cage SAs (M@Si16) and germanium-cage SAs (M@Ge16), with a focus on their electrical properties associated with a conduction mechanism toward the development of new functional nanoscale materials.
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U2 - 10.1039/d3cp00120b
DO - 10.1039/d3cp00120b
M3 - Review article
C2 - 36947064
AN - SCOPUS:85151450558
SN - 1463-9076
VL - 25
SP - 9738
EP - 9752
JO - Physical Chemistry Chemical Physics
JF - Physical Chemistry Chemical Physics
IS - 14
ER -