Droplet Electricity Generators With Maximized Energy Collection Zone Enabled by Aloe‐Inspired Midrib and Cuticle

G Gibeom Lee (Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea) E Eunbyeol Kim (Department of Mechanical Engineering Gachon University Seongnam Republic of Korea) K Kyongtae Choi (Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea) M Minjun Song (Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea) S Sunmin Jang D Dongwhi Choi D Donghyun Seo (ES Advanced R&D Division LG Electronics Seoul Republic of Korea) M Min‐Gyu Lee (Semiconductor R&D Center Samsung Electronics Co., Ltd Yongin Republic of Korea) Y Younghoon Lee

Abstract

ABSTRACT Leveraging water as an abundant and continuously available natural resource, droplet electricity generators (DEGs) have gained significant attention for their ability to produce high instantaneous voltages from the simple impact of water droplets. However, conventional DEGs are fundamentally limited by their narrow energy collection zones, confined to regions immediately adjacent to the switch electrode. In nature, Aloe vera overcomes a similar spatial challenge by guiding scarce rainfall toward the root through its midrib‐like longitudinal ridge and water‐repellent wax‐rich cuticle—an integrated water‐guiding architecture that transports droplets over long distances with minimal loss. Here, inspired by this mechanism, we introduce a scalable DEG that maximizes the energy collection zone through an artificial droplet‐channeling strategy. A midrib‐inspired curvilinear geometry induces uni‐directional spreading upon impact, while an artificial hydrophobic cuticle composed of a hydrocarbon‐based OTS–squalane layer enables smooth, low‐retention sliding and robust interfacial stability. These features substantially expand the effective collection zone and yield approximately 236% higher charge output than a conventional DEG, unlocking new opportunities for large‐area, distributed, and environmentally adaptive droplet‐energy harvesting.

Article Details

Volume / Issue Vol. 38, Issue 39
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

G

Gibeom Lee

Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea

E

Eunbyeol Kim

Department of Mechanical Engineering Gachon University Seongnam Republic of Korea

K

Kyongtae Choi

Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea

M

Minjun Song

Department of Mechanical Engineering Kyung Hee University Yongin Republic of Korea

S

Sunmin Jang

D

Dongwhi Choi

D

Donghyun Seo

ES Advanced R&D Division LG Electronics Seoul Republic of Korea

M

Min‐Gyu Lee

Semiconductor R&D Center Samsung Electronics Co., Ltd Yongin Republic of Korea

Y

Younghoon Lee