Title :
Drop-Casted Self-Assembled Topological Insulator Membrane as an Effective Saturable Absorber for Ultrafast Laser Photonics
Author :
Qingkai Wang ; Yu Chen ; Guobao Jiang ; Lili Miao ; Chujun Zhao ; Xiquan Fu ; Shuangchun Wen ; Han Zhang
Author_Institution :
Key Lab. for Micro-/Nano-Optoelectron. Devices of Minist. of Educ., Hunan Univ., Changsha, China
Abstract :
Through employing a cost-effective solvothermal method, ultrathin topological insulator (TI) bismuth telluride (Bi2Te3) nanosheets with uniform hexagonal nanostructures had been synthesized. Thanks to the uniformity of few-layer TI dispersion, we are able to adopt the drop-casting approach in order to directly transfer few-layer TI and, therefore, form a self-assembled uniform volatile TI membrane that is suitably deposited onto the end facet of an optical fiber as an effective optical saturable absorber. Its saturable absorption parameters could be deliberately tailored by thinning its thickness by mechanical exfoliation. The incorporation of the as-fabricated saturable absorber inside the fiber laser cavity allows for the operation of either a microsecond or a femtosecond pulse because different saturable absorption parameters can decide whether the fiber laser operates in the mode-locking or Q-switching state. Our work provides a convenient way of fabricating a high-quality TI membrane-based saturable absorber with promising applications for laser operation.
Keywords :
Q-switching; bismuth compounds; casting; fibre lasers; high-speed optical techniques; laser cavity resonators; laser mode locking; membranes; nanofabrication; nanostructured materials; optical fibres; optical saturable absorption; self-assembly; topological insulators; Bi2Te3; Q-switching state; cost-effective solvothermal method; drop-casted self-assembled topological insulator membrane; effective optical saturable absorber; femtosecond pulse; few-layer TI dispersion; fiber laser cavity; laser mode-locking; mechanical exfoliation; microsecond pulse; optical fiber; ultrafast laser photonics; ultrathin topological insulator bismuth telluride nanosheets; uniform hexagonal nanostructures; Materials; Optical device fabrication; Optical fiber couplers; Optical fiber devices; Optical fiber dispersion; Optical fiber polarization; Q-switching; Topological insulator; mode-locking; self-assembled;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2015.2406754