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Parag V Chitnis

Publications and source records attributed to Parag V Chitnis.

2 recordsLinked to original sources

Microstructured Electrode-Piezopolymer Interface for Ultrasound Transducers with Enhanced Flexibility and Acoustic Performance

Ultrasound transducers made from rigid piezoceramics are difficult to adapt for wearable or conformal applications. Piezopolymer-based transducers offer a practical alternative; however, most existing studies focus on piezoelectric materials, while the influence of electrode material and electrode-polymer interface remains underexplored. This study leverages different interface-engineering strategies to examine the influence of electrode-piezopolymer interface morphology on piezoelectric, dielectric, and acoustic behavior in flexible transducers. Devices were fabricated using silver (Ag), gold (Au), graphene flakes (GF), laser-induced graphene (LIG), and Au-decorated LIG electrodes, enabling comparison across interfacial architectures. LIG-based transducers showed strong acoustic and piezoelectric output due to partial infiltration of the piezopolymer into the porous LIG network, which enhances interfacial contact and stress transfer. Au-based transducers achieved comparable acoustic output. In contrast, dense Ag electrodes and layered GF films provided limited coupling, resulting in reduced electromechanical response. LIG-based transducers exhibited the highest flexibility and durability, retaining stable performance after 10,000 bending cycles and an eight-week aging study, whereas GF, Ag, and Au devices degraded under bending, and Ag electrodes declined over time. These findings demonstrate that engineering the electrode-polymer interface is critical for high-performance flexible ultrasound transducers and identify LIG as a strong candidate for wearable imaging applications.

physics.app-ph↗

Integration of Porous Graphene and 3D-printed Piezopolymer for Flexible Ultrasound Transducers

Ultrasound technology is crucial in diagnostic imaging, making it widely used in medical applications. However, traditional ultrasound transducers face limitations in flexibility and ease of fabrication, leading to the exploration of thin-film and flexible piezoelectric materials. Here, we present a novel approach that combines laser graphitization with 3D printing to integrate flexible laser-induced porous graphene (LIG) with poly(vinylidene fluoride-trifluoroethylene) (PVDF-TrFE), resulting in the development of flexible LIG/PVDF-TrFE ultrasound patches. The thickness of PVDF-TrFE is adjusted to tune the central frequency of the ultrasound transducer, allowing customization within a range of 10 to 28 MHz. LIG-based ultrasound transducer demonstrates a high signal amplitude of 6.72 V and a signal-to-noise ratio (SNR) of 433, along with a -6 dB bandwidth of 8.86 MHz (37%). The LIG-based transducer exhibits higher acoustic performance compared to the smooth silver-based transducer. A high-quality two-dimensional ultrasound image, including a B-mode image of a cyst phantom, demonstrates the transducer's imaging capabilities. The patterning of LIG-based electrodes facilitates the desired sensor configuration, demonstrating the suitability of our novel technique for producing flexible transducer arrays without dicing and cutting. The materials cost of our LIG/PVDF-TrFE transducer is under $5 per unit, making it a low-cost solution for ultrasound patches.

physics.app-ph↗