Torna ai risultati
Scheda bibliografica · Consultazione e accesso
Artículo

Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage

Caihong Li et al · Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China · 2022

Accesso aperto disponibile
Lettura rapida. Controlla i dati essenziali della risorsa e accedi al contenuto con il pulsante principale. La scheda mostra solo le informazioni necessarie per identificare, citare e aprire l’opera.

Accesso alla risorsa

Apri il contenuto dall’opzione principale o scegli un’altra fonte disponibile.

DOAJ DOAJ Articles
Entrar por DOAJ
Accesso principale

Accesso aperto disponibile

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Apri risorsa

Riepilogo

Descripción general del contenido del recurso.

The human visual system, dependent on retinal cells, can be regarded as a complex combination of optical system and nervous system. Artificial retinal system could mimic the sensing and processing function of human eyes. Optically stimulated synaptic devices could serve as the building blocks for artificial retinas and subsequent information transmission system to brain. Herein, photonic synaptic transistors based on polycrystalline MoS2, which could simulate human visual perception and brain storage, are presented. Moreover, the photodetection range from visible light to near-infrared light of MoS2 multilayer could extend human eyes’ vision limitation to near-infrared light. Additionally, the photonic synaptic transistor shows an ultrafast speed within 5 μs and ultralow power consumption under optical stimuli about 40 aJ, several orders of magnitude lower than biological synapses (50 ms and 10 fJ). Furthermore, the backgate control could act as emotional modulation of the artificial brain to enhance or suppress memory function, i.e. the intensity of photoresponse. The proposed carrier trapping/detrapping as the main working mechanism is presented for the device. In addition, synaptic functionalities including short synaptic plasticity, long synaptic plasticity and paired-pulse facilitation could be successfully simulated based on the prepared device. Furthermore, the large difference between short synaptic plasticity and long synaptic plasticity reveals the better image pre-processing function of the prepared photonic synapses. The classical Pavlovian conditioning associated with the associative learning is successfully implemented as well. Therefore, the efficient and rich functionalities demonstrate the potential of the MoS2 synaptic device that integrates sensing-memory-preprocessing capabilities for realizing artificial neural networks with different emotions that mimic human retina and brain.

Come citare

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, C. L. E. (2022). Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage. https://doi.org/10.29026/oea.2022.210069

MLA

al, Caihong Li et. "Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage." 2022. https://doi.org/10.29026/oea.2022.210069.

Chicago

al, Caihong Li et. 2022. "Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage.". https://doi.org/10.29026/oea.2022.210069.

Harvard

al, C. L. E. 2022, Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage, Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China, available at: https://doi.org/10.29026/oea.2022.210069 [Accessed 8 Aug. 2026].

Condividi e stampa

Salva la scheda, copia il link permanente o stampala in PDF.

Esporta riferimento

Esporta il record nei formati più comuni per usarlo con un gestore bibliografico.

Dettagli della risorsa

Informazioni bibliografiche utili per verificare che sia il materiale corretto.

Titolo
Photonic synapses with ultralow energy consumption for artificial visual perception and brain storage
Autore / collaboratori
Caihong Li et al
Editore
Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China
Anno di pubblicazione
2022
ISSN
2096-4579
ISSN
2096-4579
Lingua
Inglés

Soggetti

Esplora risorse correlate a partire da questi soggetti.

Copiato