RDL logo
About
Aims and ScopeAdvisory Board Members
More
Who We Are?
User Guide
​
​
Sign inGet started
​
​

About
Aims and ScopeAdvisory Board Members
More
Who We Are?
User Guide

Sign inGet started
RDL logo

Verified research datasets. Instant access. Built for collaboration.

Navigation

About

Aims and Scope

Advisory Board Members

More

Who We Are?

Add Raw Data

User Guide

Legal

Privacy Policy

Terms of Service

Support

Got an issue? Email us directly.

Email: info@rawdatalibrary.netOpen Mail App
​
​

© 2025 Raw Data Library. All rights reserved.
PrivacyTerms
  1. Raw Data Library
  2. /
  3. Publications
  4. /
  5. Self‐Powered Syringe Pump for Insulin Pump Therapy Based on High‐Voltage Triboelectric Nanogenerator and Dielectric Elastomer Actuator

Verified authors • Institutional access • DOI aware
50,000+ researchers120,000+ datasets90% satisfaction
Article
en
2023

Self‐Powered Syringe Pump for Insulin Pump Therapy Based on High‐Voltage Triboelectric Nanogenerator and Dielectric Elastomer Actuator

0 Datasets

0 Files

en
2023
Vol 33 (26)
Vol. 33
DOI: 10.1002/adfm.202213727

Get instant academic access to this publication’s datasets.

Create free accountHow it works

Frequently asked questions

Is access really free for academics and students?

Yes. After verification, you can browse and download datasets at no cost. Some premium assets may require author approval.

How is my data protected?

Files are stored on encrypted storage. Access is restricted to verified users and all downloads are logged.

Can I request additional materials?

Yes, message the author after sign-up to request supplementary files or replication code.

Advance your research today

Join 50,000+ researchers worldwide. Get instant access to peer-reviewed datasets, advanced analytics, and global collaboration tools.

Get free academic accessLearn more
✓ Immediate verification • ✓ Free institutional access • ✓ Global collaboration
Access Research Data

Join our academic network to download verified datasets and collaborate with researchers worldwide.

Get Free Access
Institutional SSO
Secure
This PDF is not available in different languages.
No localized PDFs are currently available.
Zhong Lin Wang
Zhong Lin Wang

Beijing Institute of Technology

Verified
Yi Wei
Wenjie Wu
Yuhao Wang
+3 more

Abstract

Abstract Insulin pump therapy (IPT) is commonly utilized for treating type 1 diabetes. However, the insulin pump is generally rigid, and its prolonged use can cause discomfort to patients. Additionally, the device suffers from other drawbacks such as limited battery life. Herein, an IPT system consisting of a dielectric elastomer‐based soft syringe pump (DE‐SSP) and a high‐voltage triboelectric nanogenerator (H‐TENG) is introduced, which can achieve stable and adjustable liquid output depending on real‐time blood glucose. The maximum pump volume of this IPT can reach 262.4 or 303.7 µL when powered by a DC source or H‐TENG, respectively, which is generally sufficient to meet the requirements of the therapy. H‐TENG possesses a sensitive self‐protection mechanism that minimizes the risk of electrical damage and it can be easily fabricated or repaired and flexibly designed according to the application environment. The proposed IPT system is compatible with different placement angles and utilizes compliant electrodes with good biocompatibility that ensure its safety. It also overcomes common issues including rigidness, relatively fixed bolus delivery options, and short battery life associated with traditional insulin pumps. This study not only demonstrates a combination of H‐TENG and DE‐based actuators but also opens new avenues for microelectromechanical systems micropumps.

How to cite this publication

Yi Wei, Wenjie Wu, Yuhao Wang, Xiangyu Chen, Zhong Lin Wang, Dan Yang (2023). Self‐Powered Syringe Pump for Insulin Pump Therapy Based on High‐Voltage Triboelectric Nanogenerator and Dielectric Elastomer Actuator. , 33(26), DOI: https://doi.org/10.1002/adfm.202213727.

Related publications

Why join Raw Data Library?

Quality

Datasets shared by verified academics with rich metadata and previews.

Control

Authors choose access levels; downloads are logged for transparency.

Free for Academia

Students and faculty get instant access after verification.

Publication Details

Type

Article

Year

2023

Authors

6

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1002/adfm.202213727

Join Research Community

Access datasets from 50,000+ researchers worldwide with institutional verification.

Get Free Access