A holistically 3D-printed flexible millimeter-wave Doppler radar: Towards fully printed high-frequency multilayer flexible hybrid electronics systems

Author:

Tang Hong1ORCID,Zhang YIngjie1,Zheng Bowen2,An Sensong2ORCID,Haerinia Mohammad1,Dong Yunxi1,Huang Yi1ORCID,Guo Wei2,Zhang Hualiang2ORCID

Affiliation:

1. University of Massachusetts, Lowell

2. University of Massachusetts Lowell

Abstract

Abstract Flexible hybrid electronics (FHE) is an emerging technology enabled through the integration of advanced semiconductor devices and 3D printing technology. It unlocks tremendous market potential by realizing low-cost flexible circuits and systems that can be conformally integrated into various applications. However, the operating frequencies of most reported FHE systems are relatively low. It is also worth to note that reported FHE systems have been limited to relatively simple design concept (since complex systems will impose challenges in aspects such as multilayer interconnections, printing materials, and bonding layers). Here, we report a fully 3D-printed flexible four-layer millimeter-wave Doppler radar (i.e., a millimeter-wave FHE system). The sensing performance and flexibility of the 3D-printed radar are characterized and validated by general field tests and bending tests, respectively. Our results demonstrate the feasibility of developing fully 3D-printed high-frequency multilayer FHE, which can be conformally integrated into irregular surfaces (e.g., vehicle bumpers) for applications such as vehicle radars and wearable electronics.

Publisher

Research Square Platform LLC

Reference46 articles.

1. Flexible Hybrid Electronics for Digital Healthcare;Ma Y;Adv. Mater.,2020

2. Printing Flexible and Hybrid Electronics for Human Skin and Eye-Interfaced Health Monitoring Systems;Kim K;Adv. Mater.,2020

3. Flexible Hybrid Sensors for Health Monitoring: Materials and Mechanisms to Render Wearability;Gao Y;Adv. Mater.,2020

4. Multifunctional Skin-Inspired Flexible Sensor Systems for Wearable Electronics;Xu K;Adv. Mater. Technol.,2019

5. Compliant plant wearables for localized microclimate and plant growth monitoring;Nassar JM;npj Flex. Electron.,2018

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