Atomically Precise Ag 11 and Ag 12 Nanocluster‐Assembled 2D Materials for Memristive and Neuromorphic Functionality

ABSTRACT Designing two‐dimensional (2D) materials from atomically precise nanocluster building blocks is a challenging task, yet crucial for next‐generation electronic devices. By tuning cluster nuclearity and ligand environment, well‐defined assemblies can be designed, enabling control over optoelectronic properties at the atomic level. Herein, we report the bottom‐up synthesis of two structurally distinct 2D nanocluster‐assembled materials constructed from Ag 12 (2D Ag 12 ‐CAM) and Ag 11 (2D Ag 11 ‐CAM) nanocluster building blocks. The change in cluster nuclearity arises solely from ligand tuning; benzenethiol yields the Ag 12 ‐based framework, whereas 3,5‐bis(trifluoromethyl)benzenethiol (BTFMBT) directs formation of the Ag 11 analogue. Lateral memristive devices fabricated from these materials (D‐1: 2D Ag 12 ‐CAM; D‐2: 2D Ag 11 ‐CAM) exhibit coexistence of negative differential resistance (NDR) and robust resistive switching with endurance stable over 4000 switching cycles. Device D‐2, based on 2D Ag 11 ‐CAM, shows a markedly enhanced on‐off ( I on / I off ) ratio (∼ 642) compared to device D‐1 (∼ 200), and more pronounced NDR. Furthermore, the 2D Ag 11 ‐CAM (D‐2)‐based device was evaluated for neuromorphic functionality, mimicking the adaptive behavior of biological synapses. It exhibits analogue potentiation and depression under pulse stimulation, while experimentally extracted synaptic weight updates enable an artificial neural network to achieve a test accuracy of 84.2%, approaching that of a machine learning (ML)‐trained network (93.2%).

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Publication Details

Journal
Advanced Materials
Published
2026-08-26
DOI
https://doi.org/10.1002/adma.74781
Primary Topic
Nanocluster Synthesis and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Atomically Precise Ag 11 and Ag 12 Nanocluster‐Assembled 2D Materials for Memristive and Neuromorphic Functionality

Latévi Max Lawson Daku, Arnulf Rosspeintner, Saood Khan, Thomas Bürgi et al.
Advanced Materials
Nanocluster Synthesis and Applications
article

Atomically Precise Ag 11 and Ag 12 Nanocluster‐Assembled 2D Materials for Memristive and Neuromorphic Functionality

Latévi Max Lawson Daku, Arnulf Rosspeintner, Saood Khan, Thomas Bürgi, Céline Besnard, Noohul Alam, Soumya Jyoti Ray, Towhidur Rahaman
article en

Abstract

ABSTRACT Designing two‐dimensional (2D) materials from atomically precise nanocluster building blocks is a challenging task, yet crucial for next‐generation electronic devices. By tuning cluster nuclearity and ligand environment, well‐defined assemblies can be designed, enabling control over optoelectronic properties at the atomic level. Herein, we report the bottom‐up synthesis of two structurally distinct 2D nanocluster‐assembled materials constructed from Ag 12 (2D Ag 12 ‐CAM) and Ag 11 (2D Ag 11 ‐CAM) nanocluster building blocks. The change in cluster nuclearity arises solely from ligand tuning; benzenethiol yields the Ag 12 ‐based framework, whereas 3,5‐bis(trifluoromethyl)benzenethiol (BTFMBT) directs formation of the Ag 11 analogue. Lateral memristive devices fabricated from these materials (D‐1: 2D Ag 12 ‐CAM; D‐2: 2D Ag 11 ‐CAM) exhibit coexistence of negative differential resistance (NDR) and robust resistive switching with endurance stable over 4000 switching cycles. Device D‐2, based on 2D Ag 11 ‐CAM, shows a markedly enhanced on‐off ( I on / I off ) ratio (∼ 642) compared to device D‐1 (∼ 200), and more pronounced NDR. Furthermore, the 2D Ag 11 ‐CAM (D‐2)‐based device was evaluated for neuromorphic functionality, mimicking the adaptive behavior of biological synapses. It exhibits analogue potentiation and depression under pulse stimulation, while experimentally extracted synaptic weight updates enable an artificial neural network to achieve a test accuracy of 84.2%, approaching that of a machine learning (ML)‐trained network (93.2%).

Advanced Materials
University of Geneva (CH), Indian Institute of Technology Patna (IN), Institute of Crystallography (IT)
National Science Foundation, Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung, Université de Genève, Indian Institute of Technology Guwahati
Sustainable cities and communities
Openalex Percentile: Top 23%
Nanocluster Synthesis and Applications
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