TY - JOUR
T1 - Pressure-Induced Amorphization and Crystallization of Heterophase Pd Nanostructures
AU - Li, Qian
AU - Cheng, Hongfei
AU - Xing, Caihong
AU - Guo, Songhao
AU - Wu, Xiaotong
AU - Zhang, Liming
AU - Zhang, Dongzhou
AU - Liu, Xingchen
AU - Wen, Xiaodong
AU - Lü, Xujie
AU - Zhang, Hua
AU - Quan, Zewei
PY - 2022/4/27
Y1 - 2022/4/27
N2 - Control of structural ordering in noble metals is very important for the exploration of their properties and applications, and thus it is highly desired to have an in-depth understanding of their structural transitions. Herein, through high-pressure treatment, the mutual transformations between crystalline and amorphous phases are achieved in Pd nanosheets (NSs) and nanoparticles (NPs). The amorphous domains in the amorphous/crystalline Pd NSs exhibit pressure-induced crystallization (PIC) phenomenon, which is considered as the preferred structural response of amorphous Pd under high pressure. On the contrary, in the spherical crystalline@amorphous core-shell Pd NPs, pressure-induced amorphization (PIA) is observed in the crystalline core, in which the amorphous-crystalline phase boundary acts as the initiation site for the collapse of crystalline structure. The distinct PIC and PIA phenomena in two different heterophase Pd nanostructures might originate from the different characteristics of Pd NSs and NPs, including morphology, amorphous-crystalline interface, and lattice parameter. This work not only provides insights into the phase transition mechanisms of amorphous/crystalline heterophase noble metal nanostructures, but also offers an alternative route for engineering noble metals with different phases.
AB - Control of structural ordering in noble metals is very important for the exploration of their properties and applications, and thus it is highly desired to have an in-depth understanding of their structural transitions. Herein, through high-pressure treatment, the mutual transformations between crystalline and amorphous phases are achieved in Pd nanosheets (NSs) and nanoparticles (NPs). The amorphous domains in the amorphous/crystalline Pd NSs exhibit pressure-induced crystallization (PIC) phenomenon, which is considered as the preferred structural response of amorphous Pd under high pressure. On the contrary, in the spherical crystalline@amorphous core-shell Pd NPs, pressure-induced amorphization (PIA) is observed in the crystalline core, in which the amorphous-crystalline phase boundary acts as the initiation site for the collapse of crystalline structure. The distinct PIC and PIA phenomena in two different heterophase Pd nanostructures might originate from the different characteristics of Pd NSs and NPs, including morphology, amorphous-crystalline interface, and lattice parameter. This work not only provides insights into the phase transition mechanisms of amorphous/crystalline heterophase noble metal nanostructures, but also offers an alternative route for engineering noble metals with different phases.
KW - high pressure treatment
KW - noble metals
KW - phase transitions
KW - pressure-induced amorphization
KW - pressure-induced crystallization
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UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85127232981&origin=recordpage
U2 - 10.1002/smll.202106396
DO - 10.1002/smll.202106396
M3 - RGC 21 - Publication in refereed journal
SN - 1613-6810
VL - 18
JO - Small
JF - Small
IS - 17
M1 - 2106396
ER -