: Green electronics is an emerging topic that requires the exploration of new methodologies for the integration of green components into electronic devices. Therefore, the development of alternative and eco-friendly raw materials, biocompatible and biodegradable, is of great importance. Among these, sodium-alginate is a natural biopolymer extracted from marine algae having a great potential in terms of transparency, flexibility, and conductivity, when functionalized with a thin gold (Au) layer. The electrical transport of these flexible and conducting substrates has been studied, by DC measurements, from 300 to 10 K, to understand the interplay between the organic substrate and the metallic layer. The results were compared to reference bilayers based on polymethyl-methacrylate, a well-known polymer used in electronics. In addition, a detailed investigation of the electric noise properties was also performed. This analysis allows to study the effect of charge carriers fluctuations, providing important information to quantify the minimum metallic thickness required for electronic applications. In particular, the typical noise behavior of metallic compounds was observed in samples covered with 5 nm of Au, while noise levels related to a non-metallic conduction were found for a thickness of 4.5 nm, despite of the relatively good DC conductance of the bilayer.

Electrical conduction and noise spectroscopy of sodium-alginate gold-covered ultrathin films for flexible green electronics / Barone, Carlo; Maccagnani, Piera; Dinelli, Franco; Bertoldo, Monica; Capelli, Raffaella; Cocchi, Massimo; Seri, Mirko; Pagano, Sergio. - In: SCIENTIFIC REPORTS. - ISSN 2045-2322. - 12:1(2022), pp. N/A-N/A. [10.1038/s41598-022-14030-2]

Electrical conduction and noise spectroscopy of sodium-alginate gold-covered ultrathin films for flexible green electronics

Capelli, Raffaella;
2022

Abstract

: Green electronics is an emerging topic that requires the exploration of new methodologies for the integration of green components into electronic devices. Therefore, the development of alternative and eco-friendly raw materials, biocompatible and biodegradable, is of great importance. Among these, sodium-alginate is a natural biopolymer extracted from marine algae having a great potential in terms of transparency, flexibility, and conductivity, when functionalized with a thin gold (Au) layer. The electrical transport of these flexible and conducting substrates has been studied, by DC measurements, from 300 to 10 K, to understand the interplay between the organic substrate and the metallic layer. The results were compared to reference bilayers based on polymethyl-methacrylate, a well-known polymer used in electronics. In addition, a detailed investigation of the electric noise properties was also performed. This analysis allows to study the effect of charge carriers fluctuations, providing important information to quantify the minimum metallic thickness required for electronic applications. In particular, the typical noise behavior of metallic compounds was observed in samples covered with 5 nm of Au, while noise levels related to a non-metallic conduction were found for a thickness of 4.5 nm, despite of the relatively good DC conductance of the bilayer.
2022
12
1
N/A
N/A
Electrical conduction and noise spectroscopy of sodium-alginate gold-covered ultrathin films for flexible green electronics / Barone, Carlo; Maccagnani, Piera; Dinelli, Franco; Bertoldo, Monica; Capelli, Raffaella; Cocchi, Massimo; Seri, Mirko; Pagano, Sergio. - In: SCIENTIFIC REPORTS. - ISSN 2045-2322. - 12:1(2022), pp. N/A-N/A. [10.1038/s41598-022-14030-2]
Barone, Carlo; Maccagnani, Piera; Dinelli, Franco; Bertoldo, Monica; Capelli, Raffaella; Cocchi, Massimo; Seri, Mirko; Pagano, Sergio
File in questo prodotto:
File Dimensione Formato  
s41598-022-14030-2.pdf

Open access

Tipologia: Versione pubblicata dall'editore
Dimensione 3.77 MB
Formato Adobe PDF
3.77 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

Licenza Creative Commons
I metadati presenti in IRIS UNIMORE sono rilasciati con licenza Creative Commons CC0 1.0 Universal, mentre i file delle pubblicazioni sono rilasciati con licenza Attribuzione 4.0 Internazionale (CC BY 4.0), salvo diversa indicazione.
In caso di violazione di copyright, contattare Supporto Iris

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1332327
Citazioni
  • ???jsp.display-item.citation.pmc??? 2
  • Scopus 8
  • ???jsp.display-item.citation.isi??? ND
social impact