TY - JOUR
T1 - Nanocellulose Paper Semiconductor with a 3D Network Structure and Its Nano-Micro-Macro Trans-Scale Design
AU - Koga, Hirotaka
AU - Nagashima, Kazuki
AU - Suematsu, Koichi
AU - Takahashi, Tsunaki
AU - Zhu, Luting
AU - Fukushima, Daiki
AU - Huang, Yintong
AU - Nakagawa, Ryo
AU - Liu, Jiangyang
AU - Uetani, Kojiro
AU - Nogi, Masaya
AU - Yanagida, Takeshi
AU - Nishina, Yuta
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/6/28
Y1 - 2022/6/28
N2 - Semiconducting nanomaterials with 3D network structures exhibit various fascinating properties such as electrical conduction, high permeability, and large surface areas, which are beneficial for adsorption, separation, and sensing applications. However, research on these materials is substantially restricted by the limited trans-scalability of their structural design and tunability of electrical conductivity. To overcome this challenge, a pyrolyzed cellulose nanofiber paper (CNP) semiconductor with a 3D network structure is proposed. Its nano-micro-macro trans-scale structural design is achieved by a combination of iodine-mediated morphology-retaining pyrolysis with spatially controlled drying of a cellulose nanofiber dispersion and paper-crafting techniques, such as microembossing, origami, and kirigami. The electrical conduction of this semiconductor is widely and systematically tuned, via the temperature-controlled progressive pyrolysis of CNP, from insulating (1012ω cm) to quasimetallic (10-2ω cm), which considerably exceeds that attained in other previously reported nanomaterials with 3D networks. The pyrolyzed CNP semiconductor provides not only the tailorable functionality for applications ranging from water-vapor-selective sensors to enzymatic biofuel cell electrodes but also the designability of macroscopic device configurations for stretchable and wearable applications. This study provides a pathway to realize structurally and functionally designable semiconducting nanomaterials and all-nanocellulose semiconducting technology for diverse electronics.
AB - Semiconducting nanomaterials with 3D network structures exhibit various fascinating properties such as electrical conduction, high permeability, and large surface areas, which are beneficial for adsorption, separation, and sensing applications. However, research on these materials is substantially restricted by the limited trans-scalability of their structural design and tunability of electrical conductivity. To overcome this challenge, a pyrolyzed cellulose nanofiber paper (CNP) semiconductor with a 3D network structure is proposed. Its nano-micro-macro trans-scale structural design is achieved by a combination of iodine-mediated morphology-retaining pyrolysis with spatially controlled drying of a cellulose nanofiber dispersion and paper-crafting techniques, such as microembossing, origami, and kirigami. The electrical conduction of this semiconductor is widely and systematically tuned, via the temperature-controlled progressive pyrolysis of CNP, from insulating (1012ω cm) to quasimetallic (10-2ω cm), which considerably exceeds that attained in other previously reported nanomaterials with 3D networks. The pyrolyzed CNP semiconductor provides not only the tailorable functionality for applications ranging from water-vapor-selective sensors to enzymatic biofuel cell electrodes but also the designability of macroscopic device configurations for stretchable and wearable applications. This study provides a pathway to realize structurally and functionally designable semiconducting nanomaterials and all-nanocellulose semiconducting technology for diverse electronics.
KW - customized 3D network structures
KW - nanocellulose
KW - paper electronics
KW - semiconductor
KW - trans-scale structural design
KW - tunable electrical property
UR - https://www.scopus.com/pages/publications/85129335331
UR - https://www.scopus.com/pages/publications/85129335331#tab=citedBy
U2 - 10.1021/acsnano.1c10728
DO - 10.1021/acsnano.1c10728
M3 - Article
C2 - 35471008
AN - SCOPUS:85129335331
SN - 1936-0851
VL - 16
SP - 8630
EP - 8640
JO - ACS Nano
JF - ACS Nano
IS - 6
ER -