Thermoresponsive Transient Radio Frequency Antennas: Toward Triggered Wireless Transient Circuits

被引:7
作者
Zhang, Xin [1 ]
Weber, Callie M. [2 ]
Bellan, Leon M. [1 ,2 ]
机构
[1] Vanderbilt Univ, Dept Mech Engn, Nashville, TN 37235 USA
[2] Vanderbilt Univ, Dept Biomed Engn, Nashville, TN 37235 USA
基金
美国国家科学基金会;
关键词
antenna; flexible; LCST; thermoresponsive; transient electronics; GOLD NANOPARTICLES; IN-VIVO; SILVER NANOPARTICLE; TEMPERATURE; POLYMER; BIOCOMPATIBILITY; ELECTRONICS; PERFORMANCE; TECHNOLOGY; TOXICITY;
D O I
10.1002/admt.201900528
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
While implantable medical devices offer tremendous potential for treating a myriad of diseases and disorders, there are many situations in which such devices are only needed for short time periods, with extended presence or surgical removal leading to a host of undesired complications. To address this concern, researchers are working to develop implantable circuitry that eventually disintegrates. Prior work in this area leveraged known bioresorbable materials, but the lifetime of circuits formed from such materials is determined upon fabrication, and on-demand, triggered disintegration is not possible. To better match the lifetime of an implanted device to the status of the condition it is monitoring or treating, it would be advantageous to be able to noninvasively trigger disintegration at a particular time, avoiding situations in which the device lifetime is either too short or too long. Thus, to enable implantable circuitry with wireless capabilities that can disintegrate upon external stimuli, thermoresponsive transient RF antennas are formed that exhibit stable wireless response in warm aqueous environments but disintegrate and irreversibly lose functionality when cooled below a critical temperature. Antennas are formed by embedding patterned networks of silver nanowires in a thermoresponsive polymeric binder, which maintains network conductivity in warm solution but disintegrates and releases the nanowires when solution temperature drops. Mild sintering enhances electrical properties of the conductive nanowire network and antenna response while maintaining the capability for disintegration. To reduce the undesired effects of swelling, devices are sandwiched between two parylene films. These thermoresponsive transient devices represent an important step toward the realization of wireless medical implants whose disintegration can be triggered at any time by an external cooling stimulus.
引用
收藏
页数:10
相关论文
共 78 条
[1]   Silver nanoparticle applications and human health [J].
Ahamed, Maqusood ;
AlSalhi, Mohamad S. ;
Siddiqui, M. K. J. .
CLINICA CHIMICA ACTA, 2010, 411 (23-24) :1841-1848
[2]   RFID Technology for IoT-Based Personal Healthcare in Smart Spaces [J].
Amendola, Sara ;
Lodato, Rossella ;
Manzari, Sabina ;
Occhiuzzi, Cecilia ;
Marrocco, Gaetano .
IEEE INTERNET OF THINGS JOURNAL, 2014, 1 (02) :144-152
[3]   Non-ionic Thermoresponsive Polymers in Water [J].
Aseyev, Vladimir ;
Tenhu, Heikki ;
Winnik, Francoise M. .
SELF ORGANIZED NANOSTRUCTURES OF AMPHIPHILIC BLOCK COPOLYMERS II, 2011, 242 :29-89
[4]  
Benelli G., 2013, RFID under water: Technical issues and applications, P379
[5]   An RFID-Based Toolbox for the Study of Under- and Outside-Water Movement of Pebbles on Coarse-Grained Beaches [J].
Benelli, Giuliano ;
Pozzebon, Alessandro ;
Bertoni, Duccio ;
Sarti, Giovanni .
IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2012, 5 (05) :1474-1482
[6]   Methods and Applications of Multilayer Silk Fibroin Laminates Based on Spatially Controlled Welding in Protein Films [J].
Brenckle, Mark A. ;
Partlow, Benjamin ;
Tao, Hu ;
Applegate, Matthew B. ;
Reeves, Andrew ;
Paquette, Mark ;
Marelli, Benedetto ;
Kaplan, David L. ;
Omenetto, Fiorenzo G. .
ADVANCED FUNCTIONAL MATERIALS, 2016, 26 (01) :44-50
[7]   Transfer Printing Techniques for Materials Assembly and Micro/Nanodevice Fabrication [J].
Carlson, Andrew ;
Bowen, Audrey M. ;
Huang, Yonggang ;
Nuzzo, Ralph G. ;
Rogers, John A. .
ADVANCED MATERIALS, 2012, 24 (39) :5284-5318
[8]   Biodegradable Electronic Systems in 3D, Heterogeneously Integrated Formats [J].
Chang, Jan-Kai ;
Chang, Hui-Ping ;
Guo, Qinglei ;
Koo, Jahyun ;
Wu, Chih-I ;
Rogers, John A. .
ADVANCED MATERIALS, 2018, 30 (11)
[9]   Cell and protein compatibility of parylene-C surfaces [J].
Chang, Tracy Y. ;
Yadav, Vikramaditya G. ;
De Leo, Sarah ;
Mohedas, Agustin ;
Rajalingam, Birnal ;
Chen, Chia-Ling ;
Selvarasah, Selvapraba ;
Dokmeci, Mehmet R. ;
Khademhosseini, Ali .
LANGMUIR, 2007, 23 (23) :11718-11725
[10]   Microfabricated Implantable Parylene-Based Wireless Passive Intraocular Pressure Sensors [J].
Chen, Po-Jui ;
Rodger, Damien C. ;
Saati, Saloomeh ;
Humayun, Mark S. ;
Tai, Yu-Chong .
JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2008, 17 (06) :1342-1351