Programmable Non‐Volatile Photonic Analog‐to‐Digital Converter Based on Back‐End‐of‐Line Compatible Phase‐Change Materials

G GaoFei Wang J Jiabin Shen Y Yaping He Z Zhou Han (College of Integrated Circuits & Micro‐Nano Electronics Fudan University 220 Handan Road Shanghai 200433 P. R. China) W Wentao Huang (Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui Province Key Laboratory of Chemistry for inorganic/Organic Hybrid Functionalized Materials) H Hu Wang Z Zengguang Cheng (College of Integrated Circuits & Micro‐Nano Electronics Fudan University Shanghai China) P Peng Zhou

Abstract

AbstractHigh‐performance signal processing and telecommunication systems absolutely necessitate analog‐to‐digital converters (ADCs) that offer extensive bandwidth, exceptional precision, and minimal power consumption, in order to efficiently convert real‐world analog signals into digital signals. While current electronic ADCs are constrained by limitations such as low bandwidth, high jitter noise, susceptibility to electromagnetic interference, and excessive energy consumption, photonic ADCs present promising solutions to overcome these challenges. Here, a programmable photonic ADC is developed by integrating phase‐change materials (PCMs) with silicon photonics fabricated using foundry processes. Thanks to the programmability and non‐volatile nature of PCMs, 2‐ and 4‐bit photonic ADCs are demonstrated on a single chip, achieving zero energy consumption during the quantization. Through the experimental demonstration of 65‐state PCMs, photonic ADCs can attain a resolution of 8‐bit, marking a significant milestone as the highest resolution reported to date for ADCs leveraging optical technologies. As a proof of concept, an all‐optical analog‐to‐digital conversion system is demonstrated by integrating 2‐bit photonic ADCs with optical sampling using a mode‐locked laser (MLL). This system achieves the conversion of a 321 MHz radio frequency (RF) signal at a sampling rate of 40 MS s−1. The programmable, energy‐efficient, and high‐speed photonic ADCs represent a significant advancement in the evolution of signal processing systems.

Article Details

Volume / Issue Vol. 37, Issue 16
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

G

GaoFei Wang

J

Jiabin Shen

Y

Yaping He

Z

Zhou Han

College of Integrated Circuits & Micro‐Nano Electronics Fudan University 220 Handan Road Shanghai 200433 P. R. China

W

Wentao Huang

Department of Chemistry and Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Anhui Province Key Laboratory of Chemistry for inorganic/Organic Hybrid Functionalized Materials

H

Hu Wang

Z

Zengguang Cheng

College of Integrated Circuits & Micro‐Nano Electronics Fudan University Shanghai China

P

Peng Zhou