Monodisperse Colloidal Gallium Nanoparticles: Synthesis, Low Temperature Crystallization, Surface Plasmon Resonance and Li-Ion Storage
Монодисперсные коллоидные наночастицы галлия: синтез, низкотемпературная кристаллизация, поверхностный плазмонный резонанс и накопление лития в ионах Li
2014-08-18
SCID: 54.1/mdzuqntx
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Colloidal gallium nanoparticlesLi-ion battery anodesLow-temperature crystallizationMolecular dynamics simulationsSurface plasmon resonance
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Abstract (AI)
We report a facile colloidal synthesis of gallium (Ga) nanoparticles with the mean size tunable in the range of 12-46 nm and with excellent size distribution as small as 7-8%. When stored under ambient conditions, Ga nanoparticles remain stable for months due to the formation of native and passivating Ga-oxide layer (2-3 nm). The mechanism of Ga nanoparticles formation is elucidated using nuclear magnetic resonance spectroscopy and with molecular dynamics simulations. Size-dependent crystallization and melting of Ga nanoparticles in the temperature range of 98-298 K are studied with X-ray powder diffraction, specific heat measurements, transmission electron microscopy, and X-ray absorption spectroscopy. The results point to delta (δ)-Ga polymorph as a single low-temperature phase, while phase transition is characterized by the large hysteresis and by the large undercooling of crystallization and melting points down to 140-145 and 240-250 K, respectively. We have observed size-tunable plasmon resonance in the ultraviolet and visible spectral regions. We also report stable operation of Ga nanoparticles as anode material for Li-ion batteries with storage capacities of 600 mAh g(-1), 50% higher than those achieved for bulk Ga under identical testing conditions.
Key Findings
1
A facile colloidal synthesis produces monodisperse gallium nanoparticles with tunable mean sizes of 12–46 nm and size distributions as narrow as 7–8%.
2
A native 2–3 nm passivating Ga-oxide layer stabilizes the nanoparticles for months under ambient conditions.
3
Crystallization and melting show substantial undercooling, reaching 140–145 K and 240–250 K, respectively.
4
Gallium nanoparticles display size-tunable plasmon resonances from ultraviolet to visible wavelengths and operate stably as lithium-ion battery anodes, delivering 600 mAh g−1—50% above bulk Ga.
5
The nanoparticles exhibit size-dependent crystallization and melting, with δ-Ga identified as the single low-temperature polymorph and large thermal hysteresis.
Research Object
Monodisperse colloidal gallium nanoparticles with native Ga-oxide passivation, studied across sizes of 12–46 nm
Research Subject
Their formation mechanism, size-dependent low-temperature crystallization and melting, plasmon resonance, and Li-ion battery anode storage performance
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2014-08-18
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