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
Maksym Yarema, Michael Wörle, Marta D. Rossell, Rolf Erni, Riccarda Caputo, Loredana Proteşescu, Kostiantyn V. Kravchyk, Dmitry N. Dirin, Karla Lienau, Fabian O. von Rohr, A. Schilling, Maarten Nachtegaal, Maksym V. Kovalenko
2014-08-18

Colloidal gallium nanoparticlesLi-ion battery anodesLow-temperature crystallizationMolecular dynamics simulationsSurface plasmon resonance
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.
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.

Monodisperse colloidal gallium nanoparticles with native Ga-oxide passivation, studied across sizes of 12–46 nm

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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Authors
Maksym Yarema
Michael Wörle
Marta D. Rossell
Rolf Erni
Riccarda Caputo
Loredana Proteşescu
Kostiantyn V. Kravchyk
Dmitry N. Dirin
Karla Lienau
Fabian O. von Rohr
A. Schilling
Maarten Nachtegaal
Maksym V. Kovalenko
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