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Set de datos (Dataset).

One-Step Laser Nanostructuration of Reduced Graphene Oxide Films Embedding Metal Nanoparticles for Sensing Applications [Dataset]

Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250
Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
27 pages. -- Content: SM 1.1. Reagents and stock solutions. -- SM 1.2. Samples processing and fogging treatment. -- SM 2. Laser treatment optimization on the graphene oxide film. -- SM 3. Optimization of the MNPs@rGO film fabrication. -- SM 4. Supplementary figures. -- SM 5. Supplementary tables. -- SM 6. Supplementary video, The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating “naked” noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., Peer reviewed
 
DOI: http://hdl.handle.net/10261/337250
Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250

HANDLE: http://hdl.handle.net/10261/337250
Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250
 
Ver en: http://hdl.handle.net/10261/337250
Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250

Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250
Set de datos (Dataset). 2023

ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS [DATASET]

Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
27 pages. -- Content: SM 1.1. Reagents and stock solutions. -- SM 1.2. Samples processing and fogging treatment. -- SM 2. Laser treatment optimization on the graphene oxide film. -- SM 3. Optimization of the MNPs@rGO film fabrication. -- SM 4. Supplementary figures. -- SM 5. Supplementary tables. -- SM 6. Supplementary video, The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating “naked” noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., Peer reviewed




Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337253
Set de datos (Dataset). 2023

SUPPLEMENTARY VIDEO OF THE ARTICLE ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS

Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
Video 1. rGO-based conductive film patterning, fabrication, and transferring onto flexible PET substrate, The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating “naked” noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., Peer reviewed




Recercat. Dipósit de la Recerca de Catalunya
oai:recercat.cat:2072/466871
Artículo científico (JournalArticle). 2023

ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS

Recercat. Dipósit de la Recerca de Catalunya
  • Scroccarello, Annalisa
  • Álvarez Diduk, Ruslan
  • Della Pelle, Flavio
  • De Carvalho Castro Silva, Cecilia
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating "naked" noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R 2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors.




Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/336681
Artículo científico (JournalArticle). 2023

ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS

Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating "naked" noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., R.A.-D. acknowledges funding from the European Union Horizon 2020 Programme under grant no. 881603 (Graphene Flagship Core 3). ICN2 is funded by CERCA Programme, Generalitat de Catalunya. Grant SEV-2017-0706 is funded by MCIN/AEI/10.13039/501100011033. The authors also acknowledge the project PID2021-124795NB-I00 funded by MCIN/AEI/10.13039/501100011033/and FEDER Una manera de hacer Europa. F.D.P. and D.C. acknowledge the Ministry of Education, University and Research (MIUR) and European Social Fund (ESF) for the PON R&I 2014e2020 program, action 1.2 0AIM: Attraction and International Mobility’ (AIM1894039-3). C.C.C.S. acknowledges funding through CAPES─PRINT (Programa Institucional de Internacionalização; grant #88887.310281/2018-00 and 88887.467442/2019-00) and Mackpesquisa-UPM., Peer reviewed




Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337250
Set de datos (Dataset). 2023

ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS [DATASET]

Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
27 pages. -- Content: SM 1.1. Reagents and stock solutions. -- SM 1.2. Samples processing and fogging treatment. -- SM 2. Laser treatment optimization on the graphene oxide film. -- SM 3. Optimization of the MNPs@rGO film fabrication. -- SM 4. Supplementary figures. -- SM 5. Supplementary tables. -- SM 6. Supplementary video, The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating “naked” noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., Peer reviewed




Digital.CSIC. Repositorio Institucional del CSIC
oai:digital.csic.es:10261/337253
Set de datos (Dataset). 2023

SUPPLEMENTARY VIDEO OF THE ARTICLE ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS

Digital.CSIC. Repositorio Institucional del CSIC
  • Scroccarello, Annalisa
  • Álvarez-Diduk, Ruslan
  • Della Pelle, Flavio
  • Castro Silva, Cecilia de Carvalho
  • Idili, Andrea
  • Parolo, Claudio
  • Compagnone, Dario
  • Merkoçi, Arben
Video 1. rGO-based conductive film patterning, fabrication, and transferring onto flexible PET substrate, The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating “naked” noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors., Peer reviewed




Dipòsit Digital de Documents de la UAB
oai:ddd.uab.cat:272874
Artículo científico (JournalArticle). 2023

ONE-STEP LASER NANOSTRUCTURATION OF REDUCED GRAPHENE OXIDE FILMS EMBEDDING METAL NANOPARTICLES FOR SENSING APPLICATIONS

Dipòsit Digital de Documents de la UAB
  • Scroccarello, Annalisa
  • Álvarez Diduk, Ruslan|||0000-0002-9876-1574
  • Della Pelle, Flavio|||0000-0002-8877-7580
  • De Carvalho Castro Silva, Cecilia|||0000-0003-3933-1838
  • Idili, Andrea|||0000-0002-6004-270X
  • Parolo, Claudio|||0000-0001-9481-4408
  • Compagnone, Dario|||0000-0001-7849-8943
  • Merkoçi, Arben|||0000-0003-2486-8085
The combination of two-dimensional materials and metal nanoparticles (MNPs) allows the fabrication of novel nanocomposites with unique physical/chemical properties exploitable in high-performance smart devices and biosensing strategies. Current methods to obtain graphene-based films decorated with noble MNPs are cumbersome, poorly reproducible, and difficult to scale up. Herein, we propose a straightforward, versatile, surfactant-free, and single-step technique to produce reduced graphene oxide (rGO) conductive films integrating "naked" noble MNPs. This method relies on the instantaneous laser-induced co-reduction of graphene oxide and metal cations, resulting in highly exfoliated rGO nanosheets embedding gold, silver, and platinum NPs. The production procedure has been optimized, and the obtained nanomaterials are fully characterized; the hybrid nanosheets have been easily transferred onto lab-made screen-printed electrodes preserving their nanoarchitecture. The Au@rGO-, Ag@rGO-, and Pt@rGO-based electrodes have been challenged to detect caffeic acid, nitrite, and hydrogen peroxide in model solutions and real samples. The sensors yielded quantitative responses (R 2 ≥ 0.997) with sub-micromolar limits of detections (LODs ≤ 0.6 μM) for all the analytes, allowing accurate quantification in samples (recoveries ≥ 90%; RSD ≤ 14.8%, n = 3). This single-step protocol which requires low cost and minimal equipment will allow the fabrication of free-standing, MNP-embedded rGO films integrable into a variety of scalable smart devices and biosensors.




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