Inorganic-Organic Hybrid Layered Semiconductor AgSePh: Quasi-Solution Synthesis, Optical Properties, and Thermolysis Behavior.
Kewei GuTingting WangGuowei YangNan YuChengchao DuJunli WangPublished in: Inorganic chemistry (2024)
Two-dimensional inorganic-organic hybrid layered semiconductors are actively studied because of their naturally formed multiquantum well (MQW) structures and associated optical, photoelectric, and quantum optics characteristics. Silver benzeneselenolate (AgSePh, Ph = C 6 H 5 ) is a new member of such hybrid layered materials, but has not fully been exploited. Herein, we present a quasi-solution method to prepare high quality free-standing AgSePh flake-like microcrystals by reacting diphenyl diselenide (Ph 2 Se 2 ) with silver nanoparticles. The resultant AgSePh microflakes exhibit room-temperature (RT) resolvable MQW-induced quasi-particle quantization and interesting optical properties, such as three distinct excitonic resonance absorptions X 1 (2.67 eV), X 2 (2.71 eV), and X 3 (2.83 eV) in the visible region, strong narrow-line width blue photoluminescence at ∼2.64 eV (470 nm) from the radiative recombination of the X 1 exciton state, and a large exciton binding energy (∼0.35 eV). Furthermore, AgSePh microcrystals show high stability under water, oxygen, and heat environments, while above 220 °C, they will thermally decompose to silver and Ph 2 Se 2 as evidenced by a combination of thermogravimetry and differential scanning calorimetry and pyrolysis-coupled gas chromatography-mass spectrometry studies. Finally, a comparison is extended between AgSePh and other metal benzeneselenolates, benzenethiolates, and alkanethiolates to clarify differences in their solubility, decomposition/melting temperature, and pyrolytic products.
Keyphrases
- silver nanoparticles
- room temperature
- energy transfer
- high resolution
- solid state
- gas chromatography mass spectrometry
- water soluble
- gold nanoparticles
- reduced graphene oxide
- light emitting
- highly efficient
- quantum dots
- ionic liquid
- dna damage
- high glucose
- risk assessment
- diabetic rats
- heat stress
- oxidative stress
- ion batteries
- high speed
- perovskite solar cells
- monte carlo