dc.contributor.author |
Pradhan, P |
|
dc.contributor.author |
Kumar, P |
|
dc.contributor.author |
Bandaru, RK |
|
dc.contributor.author |
Dandela, R |
|
dc.contributor.author |
Banerjee, R |
|
dc.contributor.author |
Patra, BK |
|
dc.date.accessioned |
2025-07-22T08:55:17Z |
|
dc.date.available |
2025-07-22T08:55:17Z |
|
dc.date.issued |
2024 |
|
dc.identifier.citation |
Chemistry of Materials, 36, 2024; 11015-11024 |
|
dc.identifier.issn |
0897-4756 |
|
dc.identifier.uri |
http://ore.immt.res.in/handle/2018/3617 |
|
dc.description |
Council of Scientific and Industrial Research, India; CSIR [RDSF/IHP-000008, GAP-341]; SERB; University Grants Commission (UGC) [SB/S2/RJN-075/216, CRG/2018/000782, MoE-STARS/STARS 1/231]; DST-SERB for the Ramanujan fellowship |
|
dc.description.abstract |
Organic-inorganic halide perovskites (OIHPs) have attracted tremendous attention from researchers because of their diverse applications in optoelectronics, sensing, catalysis, memory, photodetectors, and medical diagnostics. The presence of inherent ferroelectricity in these perovskite materials facilitates the separation of photogenerated electron-hole pairs. Here, we report a large phosphonium cation-based methyl triphenyl phosphonium lead bromide (MTPLB) perovskite-like semiconductor with a direct band gap of 3.49 eV, which shows ferroelectricity in both nanoscale and bulk at room temperature. The material exhibits a phase transition temperature of 477 K, a polarization saturation of 0.26 mu C/cm2, and a d 33 of 5.2 pC/N. MTPLB displays a robust piezoelectric response, as confirmed via advanced piezoresponse force microscopy (PFM). Further, we have fabricated nanogenerator devices with varying ratios of MTPLB and poly(vinylidene fluoride) (PVDF) composites for mechanical and biomechanical energy harvesting. We report an enhanced piezoresponse in all devices with the best response in the device with a 2% MTPLB loading in the PVDF matrix due to the triggering of the electroactive phases in PVDF. The improved output response, operational durability, and flexibility of the composite-based devices underscore their potential for advanced technological applications in electronics, actuators, sensors, and mechanical energy-harvesting processes. |
|
dc.language |
en |
|
dc.publisher |
Amer Chemical Soc |
|
dc.relation.isreferencedby |
SCI |
|
dc.rights |
Copyright [2024]. All efforts have been made to respect the copyright to the best of our knowledge. Inadvertent omissions, if brought to our notice, stand for correction and withdrawal of document from this repository. |
|
dc.subject |
Chemical Sciences |
|
dc.subject |
Materials Sciences |
|
dc.title |
Phosphonium Cation-Based Ferroelectric 1D Halide Perovskite-Like Semiconductor for Mechanical Energy Harvesting |
|
dc.type |
Journal Article |
|
dc.affiliation.author |
CSIR-Institute of Minerals and Materials Technology, Bhubaneswar 751013, Odisha, India |
|