Bernasconi Roberto, Invernizzi Gabriele Pietro, Gallo Stampino Elisa, Gotti Riccardo, Gatti Davide, Magagnin Luca
Dipartimento di Chimica, Materiali e Ingegneria Chimica "Giulio Natta", Politecnico di Milano, Via L. Mancinelli 7, 20131 Milano, Italy.
Dipartimento di Fisica, Politecnico di Milano e IFN-CNR, Via G. Previati 1/C, 23900 Lecco, Italy.
Micromachines (Basel). 2023 Nov 10;14(11):2082. doi: 10.3390/mi14112082.
In the last few years, the manufacturing of microelectromechanical systems (MEMS) by means of innovative tridimensional and bidimensional printing technologies has significantly catalyzed the attention of researchers. Inkjet material deposition, in particular, can become a key enabling technology for the production of polymer-based inertial sensors characterized by low cost, high manufacturing scalability and superior sensitivity. In this paper, a fully inkjet-printed polymeric accelerometer is proposed, and its manufacturing steps are described. The manufacturing challenges connected with the inkjet deposition of SU-8 as a structural material are identified and addressed, resulting in the production of a functional spring-mass sensor. A step-crosslinking process allows optimization of the final shape of the device and limits defects typical of inkjet printing. The resulting device is characterized from a morphological point of view, and its functionality is assessed in performing optical readout. The acceleration range of the optimized device is 0-0.7 g, its resolution is 2 × 10 g and its sensitivity is 6745 nm/g. In general, the work demonstrates the feasibility of polymeric accelerometer production via inkjet printing, and these characteristic parameters demonstrate their potential applicability in a broad range of uses requiring highly accurate acceleration measurements over small displacements.
在过去几年中,通过创新的三维和二维打印技术制造微机电系统(MEMS)已极大地引起了研究人员的关注。特别是喷墨材料沉积,有望成为生产低成本、高制造可扩展性和卓越灵敏度的聚合物基惯性传感器的关键技术。本文提出了一种全喷墨打印的聚合物加速度计,并描述了其制造步骤。识别并解决了与作为结构材料的SU-8喷墨沉积相关的制造难题,成功制造出了一个功能性的弹簧质量传感器。分步交联工艺可优化器件的最终形状,并减少喷墨打印常见的缺陷。从形态学角度对所得器件进行了表征,并通过光学读出评估了其功能。优化后的器件加速度测量范围为0至0.7 g,分辨率为2×10 g,灵敏度为6745 nm/g。总体而言,这项工作证明了通过喷墨打印生产聚合物加速度计的可行性,这些特性参数表明其在需要对小位移进行高精度加速度测量的广泛应用中具有潜在适用性。