While the new cubic phase of tin monosulfide, pi-SnS, shows potential for various applications, not much work was focused on the phase transitions, thermal stability, and thermal properties of pi-SnS. In this work, we addressed these issues using temperature-resolved in situ X-ray diffraction combined with thermo-gravimetric differential scanning calorimetry and thermo-gravimetric infrared spectroscopy. The cubic pi-SnS phase nanoparticles capped with polyvinylpyrrolidone were proven stable for 12 hours at 400 degrees C, pointing out the possible utilization of this new cubic phase at elevated temperatures. At the same time, heating above this temperature resulted in a phase transition to the high-temperature orthorhombic beta-SnS phase. Subsequent cooling to room temperature led to an additional phase transition to the stable orthorhombic alpha-SnS phase. Interestingly, heating-induced phase transformation of pi-SnS nanoparticles always resulted in beta-SnS, even at temperatures below the alpha- to beta-SnS equilibrium transition temperature. It was shown that surfactant decomposition and evaporation triggers the phase transition. Several thermal parameters were calculated, including the phase transition activation energy and the thermal expansion of the unit cell parameter of pi-SnS.
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Wake Forest Sch Med, Family & Community Med, Med Ctr Blvd, Winston Salem, NC 27157 USAWake Forest Sch Med, Family & Community Med, Med Ctr Blvd, Winston Salem, NC 27157 USA
Bernot, John
Patel, Manali
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Campbell Univ, Coll Pharm & Hlth Sci, Buies Creek, NC 27506 USAWake Forest Sch Med, Family & Community Med, Med Ctr Blvd, Winston Salem, NC 27157 USA
Patel, Manali
Kirk, Julienne K.
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Wake Forest Sch Med, Family & Community Med, Med Ctr Blvd, Winston Salem, NC 27157 USAWake Forest Sch Med, Family & Community Med, Med Ctr Blvd, Winston Salem, NC 27157 USA