3D-printed polymer composite devices based on a ferroelectric chiral ammonium salt for high-performance piezoelectric energy harvesting.
Supriya SahooPremkumar Anil KothavadeDipti R NaphadeArun TorrisBalu PraveenkumarJan Kazimierz ZarebaThomas D AnthopoulosKadhiravan ShanmuganathanRamamoorthy BoomishankarPublished in: Materials horizons (2023)
Three-dimensional printing (3DP) is an emerging technology to fabricate complex architectures, necessary to realize state-of-the-art flexible and wearable electronic devices. In this regard, top-performing devices containing organic ferro- and piezoelectric compounds are desired to circumvent significant shortcomings of conventional piezoceramics, e.g. toxicity and high-temperature device processibility. Herein, we report on a 3D-printed composite of a chiral ferroelectric organic salt {[Me 3 CCH(Me)NH 3 ][BF 4 ]} (1) with a biodegradable polycaprolactone (PCL) polymer that serves as a highly efficient piezoelectric nanogenerator (PENG). The ferroelectric property of 1 originates from its polar tetragonal space group P 4 2 , verified by P - E loop measurements. The ferroelectric domain characteristics of 1 were further probed by piezoresponse force microscopy (PFM), which gave characteristic 'butterfly' and hysteresis loops. The PFM amplitude vs. drive voltage measurements gave a relatively high magnitude of the converse piezoelectric coefficient for 1. PCL polymer composites with various weight percentages (wt%) of 1 were prepared and subjected to piezoelectric energy harvesting tests, which gave a maximum open-circuit voltage of 36.2 V and a power density of 48.1 μW cm -2 for the 10 wt% 1-PCL champion device. Furthermore, a gyroid-shaped 3D-printed 10 wt% 1-PCL composite was fabricated to test its practical utility, which gave an excellent output voltage of 41 V and a power density of 56.8 μW cm -2 . These studies promise the potential of simple organic compounds for building PENG devices using advanced manufacturing technologies.
Keyphrases
- highly efficient
- ionic liquid
- high temperature
- single molecule
- water soluble
- transcription factor
- high resolution
- oxidative stress
- physical activity
- weight loss
- drug delivery
- body mass index
- energy transfer
- computed tomography
- magnetic resonance
- risk assessment
- human health
- weight gain
- artificial intelligence
- room temperature
- mass spectrometry