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Published on: October 26, 2015
Constructing Bi2Te3-Ti3C2TX Schottky junction in PCL scaffold to amplify photo-thermal-electricity coupling effect
Xiang Chen1, Huixing Li2, Yidong Zhong3
1Department of Radiation Oncology and Jilin Provincial Key Laboratory of Radiation Oncology & Therapy, The First Hospital of Jilin University, Changchun, 130021, China.
Abstract:
Bismuth telluride (Bi2Te3) exhibits great potential in thermoelectric therapy for bone defect repair due to its excellent thermoelectric conversion and electron-phonon decoupling properties. Nonetheless, its therapeutic efficacy is restricted by excessively low carrier mobility, insufficient body temperature gradient, and fast charge recombination. Herein, Bi2Te3 was bridged on the -O- functional group of Mxene (Ti3C2Tx) using in-situ sedimentation to construct a Bi2Te3-Ti3C2TX Schottky junction responsive to near-infrared (NIR) light. Then introduced into polycaprolactone (PCL) particles to prepare bone scaffold. Under NIR irradiation, Ti3C2TX acts as a metalloid to generate coherent electron oscillations, converting light energy into lattice heat and providing sufficient temperature gradient for activating thermoelectric effects. Subsequently, Ti3C2TX and Bi2Te3 form a Schottky junction to filter low-energy carriers, further increasing the average carrier energy to improve carrier mobility. Furthermore, the interface dipole field in heterojunctions can directionally drive electron-hole separation. Thermal imaging display scaffold possesses a temperature gradient of 30 °C. Results prove a significant optimization in carrier mobility and charge separation, resulting 45 % and 3.5-fold increase in Seebeck coefficient and current density respectively. The enhanced electrical signal can facilitate Ca2+ influx, synergizing photothermal sensitive HSP70 to promote actin cytoskeleton and cell proliferation. Moreover, current can upregulate the expression of BMP-2 and osteogenic related genes, increasing ALP and ARS by 2.5-fold to accelerate osteoblast differentiation.

