All‐Carbon‐Based Complementary Integrated Circuits

Author:

Watanabe Kazuyoshi1ORCID,Miura Naoki2,Taguchi Hiroaki2,Komatsu Takeshi2,Aratake Atsushi2,Makita Tatsuyuki3,Tanabe Masahiro3,Wakimoto Takahiro3,Kumagai Shohei4,Okamoto Toshihiro456,Watanabe Shun15ORCID,Takeya Jun1357

Affiliation:

1. Department of Advanced Materials Science Graduate School of Frontier Sciences The University of Tokyo 5‐1‐5 Kashiwanoha Kashiwa Chiba 277‐8561 Japan

2. NTT Device Technology Laboratories Nippon Telegraph and Telephone (NTT) Corporation 3‐1 Morinosato‐Wakamiya Atsugi Kanagawa 243‐0198 Japan

3. Pi‐Crystal Inc. 273‐1 Kashiwa Kashiwa Chiba 277‐0005 Japan

4. Department of Chemical Science and Engineering School of Materials and Chemical Technology Tokyo Institute of Technology 2‐12‐1 Ookayama, Meguro‐ku Tokyo 152‐8552 Japan

5. Material Innovation Research Center (MIRC) Graduate School of Frontier Sciences The University of Tokyo Kashiwa Chiba 277‐8561 Japan

6. Precursory Research for Embryonic Science and Technology (PRESTO) Japan Science and Technology Agency (JST) Kawaguchi Saitama 332‐0012 Japan

7. International Center for Materials Nanoarchitectonics (WPI‐MANA) National Institute for Materials Science (NIMS) 1‐1 Namiki Tsukuba Ibaraki 305‐0044 Japan

Abstract

AbstractOwing to the growing global increase in electronic and electrical waste (e‐waste), significant challenges arise regarding the proper disposal of electronic devices. One potential solution that has gained attention is the development of disposable electronics, in which all components are designed to be for safe and environmentally friendly disposal. In this study, all‐carbon‐based complementary integrated circuits composed of printed single‐crystalline thin films of p‐ and n‐type organic semiconductors, graphite‐based carbon electrodes/wiring, and polymeric dielectrics/substrates are demonstrated. Elemental analysis reveals that the total amount of metallic element contaminants weighed <50 parts per million (ppm). The demonstrated analog/digital integrated circuits with 64 p‐ and n‐type organic thin‐film transistors exhibit stable operation under ambient environmental conditions. These all‐carbon‐based complementary integrated circuits possess excellent element traceability, thus mitigating the potential environmental impacts throughout the device's life cycle. Consequently, this advancement represents a significant step toward addressing the global environmental challenges associated with e‐waste.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

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