Detail publikačního výsledku

Faceted Crystal Nanoarchitectonics of Organic-Inorganic 3D-Printed Visible-Light Photocatalysts

MUÑOZ MARTIN, J.; ROJAS TIZÓN, J.; PUMERA, M.

Originální název

Faceted Crystal Nanoarchitectonics of Organic-Inorganic 3D-Printed Visible-Light Photocatalysts

Anglický název

Faceted Crystal Nanoarchitectonics of Organic-Inorganic 3D-Printed Visible-Light Photocatalysts

Druh

Článek WoS

Originální abstrakt

Facet-dependent photocatalytic properties are intrinsic characteristics of several inorganic semiconductors. Herein, faceted crystal engineering and 3D-printing technology have been combined for the fabrication of the first organic-inorganic 3D-printed visible-light photocatalyst prototypes. As a proof-of-concept, two facet crystal nanoarchitectonics have been devised by in situ synthesizing Ag3PO4 nano-architectures with tunable-amorphous and faceted-shapes upon 3D-printed graphene/polylactic acid (G/PLA) nanocomposite scaffolds through a green wet-chemistry approach. The facetdependent photoactivity performance of the resulting 3D-printed photocatalysts under visible light irradiation has been explored toward (i) the photodegradation of environmental pollutants (i.e., rhodamine B) and (ii) the indirect photoelectrochemical oxygen evolution from water splitting. Overall, the 3Dprinted G/PLA carrying facet-Ag3PO4 nanoarchitectures has displayed enhanced photocatalytic and photoelectrochemical activity when compared to its amorphous-Ag3PO4 counterparts. Accordingly, the integration of inorganic semiconductors across low-cost 3D-printed G/PLA scaffolds under crystallization control represents a potential nanotechnological strategy toward the next generation of highly efficient organic-inorganic 3D-printed solar-light-driven photocatalysts, which might be mass-produced in a sustainable way, anywhere at any time.

Anglický abstrakt

Facet-dependent photocatalytic properties are intrinsic characteristics of several inorganic semiconductors. Herein, faceted crystal engineering and 3D-printing technology have been combined for the fabrication of the first organic-inorganic 3D-printed visible-light photocatalyst prototypes. As a proof-of-concept, two facet crystal nanoarchitectonics have been devised by in situ synthesizing Ag3PO4 nano-architectures with tunable-amorphous and faceted-shapes upon 3D-printed graphene/polylactic acid (G/PLA) nanocomposite scaffolds through a green wet-chemistry approach. The facetdependent photoactivity performance of the resulting 3D-printed photocatalysts under visible light irradiation has been explored toward (i) the photodegradation of environmental pollutants (i.e., rhodamine B) and (ii) the indirect photoelectrochemical oxygen evolution from water splitting. Overall, the 3Dprinted G/PLA carrying facet-Ag3PO4 nanoarchitectures has displayed enhanced photocatalytic and photoelectrochemical activity when compared to its amorphous-Ag3PO4 counterparts. Accordingly, the integration of inorganic semiconductors across low-cost 3D-printed G/PLA scaffolds under crystallization control represents a potential nanotechnological strategy toward the next generation of highly efficient organic-inorganic 3D-printed solar-light-driven photocatalysts, which might be mass-produced in a sustainable way, anywhere at any time.

Klíčová slova

Ag3PO4; degradation; water splitting; 3D-printed electrodes; optoelectronics

Klíčová slova v angličtině

Ag3PO4; degradation; water splitting; 3D-printed electrodes; optoelectronics

Autoři

MUÑOZ MARTIN, J.; ROJAS TIZÓN, J.; PUMERA, M.

Rok RIV

2023

Vydáno

28.03.2022

Nakladatel

American Chemical Society

Místo

WASHINGTON

ISSN

2574-0962

Periodikum

ACS APPLIED ENERGY MATERIALS

Svazek

5

Číslo

3

Stát

Spojené státy americké

Strany od

3252

Strany do

3258

Strany počet

7

URL

Plný text v Digitální knihovně

BibTex

@article{BUT178693,
  author="Jose Maria {Muñoz Martin} and José Daniel {Rojas Tizón} and Martin {Pumera}",
  title="Faceted Crystal Nanoarchitectonics of Organic-Inorganic 3D-Printed Visible-Light Photocatalysts",
  journal="ACS APPLIED ENERGY MATERIALS",
  year="2022",
  volume="5",
  number="3",
  pages="3252--3258",
  doi="10.1021/acsaem.1c03863",
  issn="2574-0962",
  url="https://pubs.acs.org/doi/10.1021/acsaem.1c03863"
}

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