A biocompatible pressure sensor based on a 3D-printed scaffold functionalized with PEDOT:PSS for biomedical applications

被引:8
作者
Cavallo, Aida [1 ,2 ]
Beccatelli, Matteo [3 ]
Favero, Alessia [3 ]
Al Kayal, Tamer [1 ]
Seletti, Davide [3 ]
Losi, Paola [1 ]
Soldani, Giorgio [1 ]
Coppede, Nicola [3 ]
机构
[1] CNR, Inst Clin Physiol, Lab Regenerat Med Biomat & Adv Therapies, Massa, Italy
[2] Scuola Super Sant Anna, Inst Life Sci, Pisa, Italy
[3] CNR, Inst Mat Elect & Magnetism, Parma, Italy
关键词
Pressure sensor; Flexible sensor; Biocompatible sensor; 3D printing; Conductive polymer;
D O I
10.1016/j.orgel.2021.106204
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Personalized health-care monitoring, such as human motion and gait, can provide valuable information useful for prevention and diagnosis of a variety of diseases and also in patients rehabilitation. By employing suitable biocompatible materials that possess tunable compression properties related to 3D structure and able to convert the strain stimuli into a detectable signal, pressure sensors for human motion monitoring can be developed. In this study, our purpose is to obtain a conductive and biocompatible scaffold able to transform the mechanical deformations caused by an applied pressure to an electrical resistance variations. In particular, the effect of a conductive biocompatible functionalization with PEDOT:PSS polymer on thermoplastic silicone polycarbonate polyurethane (CarboSil) scaffold presenting five different structures have been studied by mechanical and electrical tests. The scaffold stiffness depends on structures features but it is not affected by the PEDOT:PSS coating. The electrical tests show a linear response on a wide range of pressure loads with all the tested polymeric scaffolds. Two scaffolds show the higher conductivity respect to other samples. Therefore, the scaffold structure network influences the electrical sensor response. The possibility to exploit the 3D printing tecnology with CarboSil paves the way to a new class of customizable, easy to manufacture and biocompatible integrated devices for medical applications.
引用
收藏
页数:7
相关论文
共 24 条
[1]   The Role of 3D Printing in Medical Applications: A State of the Art [J].
Aimar, Anna ;
Palermo, Augusto ;
Innocenti, Bernardo .
JOURNAL OF HEALTHCARE ENGINEERING, 2019, 2019
[2]   Morphological and mechanical characterization of 3D printed PLA scaffolds with controlled porosity for trabecular bone tissue replacement [J].
Baptista, R. ;
Guedes, M. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2021, 118
[3]   All-Polymeric Pressure Sensors Based on PEDOT:PSS-Modified Polyurethane Foam [J].
Beccatelli, Matteo ;
Villani, Marco ;
Gentile, Francesco ;
Bruno, Luigi ;
Seletti, Davide ;
Nikolaidou, Domna Maria ;
Culiolo, Maurizio ;
Zappettini, Andrea ;
Coppede, Nicola .
ACS APPLIED POLYMER MATERIALS, 2021, 3 (03) :1563-1572
[4]   Wearable Stretch Sensors for Human Movement Monitoring and Fall Detection in Ergonomics [J].
Chander, Harish ;
Burch, Reuben F. ;
Talegaonkar, Purva ;
Saucier, David ;
Luczak, Tony ;
Ball, John E. ;
Turner, Alana ;
Arachchige, Sachini N. K. Kodithuwakku ;
Carroll, Will ;
Smith, Brian K. ;
Knight, Adam ;
Prabhu, Raj K. .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2020, 17 (10)
[5]   Conformational changes of fibrinogen after adsorption [J].
Clarke, ML ;
Wang, J ;
Chen, Z .
JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (46) :22027-22035
[6]   3D Printed Polyurethane Scaffolds for the Repair of Bone Defects [J].
Cooke, Megan E. ;
Ramirez-GarciaLuna, Jose L. ;
Rangel-Berridi, Karla ;
Park, Hyeree ;
Nazhat, Showan N. ;
Weber, Michael H. ;
Henderson, Janet E. ;
Rosenzweig, Derek H. .
FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2020, 8
[7]  
Dionisi A, 2014, IEEE IMTC P, P1629, DOI 10.1109/I2MTC.2014.6861021
[8]   Three-Dimensional Printed Polylactic Acid Scaffolds Promote Bone-like Matrix Deposition in Vitro [J].
Fairag, Rayan ;
Rosenzweig, Derek H. ;
Ramirez-Garcialuna, Jose L. ;
Weber, Michael H. ;
Haglund, Lisbet .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (17) :15306-15315
[9]   PEDOT:PSS for Flexible and Stretchable Electronics: Modifications, Strategies, and Applications [J].
Fan, Xi ;
Nie, Wanyi ;
Tsai, Hsinhan ;
Wang, Naixiang ;
Huang, Huihui ;
Cheng, Yajun ;
Wen, Rongjiang ;
Ma, Liujia ;
Yan, Feng ;
Xia, Yonggao .
ADVANCED SCIENCE, 2019, 6 (19)
[10]   Electronic control of Ca2+ signalling in neuronal cells using an organic electronic ion pump [J].
Isaksson, Joakim ;
Kjaell, Peter ;
Nilsson, David ;
Robinson, Nathaniel D. ;
Berggren, Magnus ;
Richter-Dahlfors, Agneta .
NATURE MATERIALS, 2007, 6 (09) :673-679