TY - JOUR
T1 - Versatile route to the controlled synthesis of multilevel branched silicon submicrometer/nanostructures
AU - Sun, Min
AU - Gao, Yihua
AU - Su, Jun
AU - Han, Xiangyun
AU - Zhang, Xianghui
AU - Zhang, Qi
AU - Shen, Guozhen
AU - Zhang, Aiqing
AU - Jin, Lei
AU - Wang, Jianbo
PY - 2010/1/14
Y1 - 2010/1/14
N2 - A variety of silicon based multilevel branched submicrometer/ nanostructures, such as branched nanowheatheads, big branched nanowheat-heads, and branched nanowires, have been rationally synthesized via a simple one-step, inexpensive, and catalyst-free fabrication technique. High-resolution transmission electron microscopy studies suggested that the main stem of wheat head and the nanotips of silicon branched nanowheat-heads are single crystals with the preferential growth direction along the [1̄12] and [11̄2] and orientation, respectively. Compared with big branched nanowheat-heads and branched nanowires, the room-temperature Raman frequency of branched nanowheat-heads is blue-shifted and its full width at half-maximum broadens. A moderately strong photoluminescence emission at 550 nm was suggested to be induced by defects, such as stacking faults or the SiOx surface in the branched nanowheat-heads, suggesting potential applications in light-emitting nanodevices. These studies shed light on new opportunities for fabricating different 3-dimensional nanostructures based on their property investigation.
AB - A variety of silicon based multilevel branched submicrometer/ nanostructures, such as branched nanowheatheads, big branched nanowheat-heads, and branched nanowires, have been rationally synthesized via a simple one-step, inexpensive, and catalyst-free fabrication technique. High-resolution transmission electron microscopy studies suggested that the main stem of wheat head and the nanotips of silicon branched nanowheat-heads are single crystals with the preferential growth direction along the [1̄12] and [11̄2] and orientation, respectively. Compared with big branched nanowheat-heads and branched nanowires, the room-temperature Raman frequency of branched nanowheat-heads is blue-shifted and its full width at half-maximum broadens. A moderately strong photoluminescence emission at 550 nm was suggested to be induced by defects, such as stacking faults or the SiOx surface in the branched nanowheat-heads, suggesting potential applications in light-emitting nanodevices. These studies shed light on new opportunities for fabricating different 3-dimensional nanostructures based on their property investigation.
UR - http://www.scopus.com/inward/record.url?scp=75149137825&partnerID=8YFLogxK
U2 - 10.1021/jp908797d
DO - 10.1021/jp908797d
M3 - Article
AN - SCOPUS:75149137825
SN - 1932-7447
VL - 114
SP - 134
EP - 138
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 1
ER -