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Image Search Results


Energy Dispersive Spectroscopy (EDS) analysis of 2D – Graphene sheet in received condition.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: Energy Dispersive Spectroscopy (EDS) analysis of 2D – Graphene sheet in received condition.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques: Spectroscopy

T8 Heat Treatment Process adopted for AA2195 – Graphene composite.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: T8 Heat Treatment Process adopted for AA2195 – Graphene composite.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

Rockwell hardness values.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: Rockwell hardness values.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

Tensile stress Vs strain curve of the AA2195 – 0.5 wt% Graphene MMCs.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: Tensile stress Vs strain curve of the AA2195 – 0.5 wt% Graphene MMCs.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

Tensile properties of AA2195 –  Graphene  reinforced MMCs.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: Tensile properties of AA2195 – Graphene reinforced MMCs.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

XRD analysis of 2D - Graphene reinforced AA2195 composite hot rolled by (T8) condition.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: XRD analysis of 2D - Graphene reinforced AA2195 composite hot rolled by (T8) condition.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

Microstructure analysis of graphene reinforced AA2195 composite in (a) As-casted condition (b) corresponding grain structure mapping (c) Hot rolled condition (d) corresponding grain structure mapping (e) 180 °C for 24 h aged by T8 condition (f) corresponding grain structure mapping.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: Microstructure analysis of graphene reinforced AA2195 composite in (a) As-casted condition (b) corresponding grain structure mapping (c) Hot rolled condition (d) corresponding grain structure mapping (e) 180 °C for 24 h aged by T8 condition (f) corresponding grain structure mapping.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

(a) FE-SEM image of graphene reinforced AA2195 composite hot rolled by T8 condition (b) Energy Dispersive Spectroscopy (EDS) mapping.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: (a) FE-SEM image of graphene reinforced AA2195 composite hot rolled by T8 condition (b) Energy Dispersive Spectroscopy (EDS) mapping.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques: Spectroscopy

(a) Dark field TEM image of 0.5 wt% of graphene reinforced AA2195 hot rolled composite plate at T8 condition (b) corresponding SAED pattern (c) Aluminium - Graphene interface in T8 condition.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: (a) Dark field TEM image of 0.5 wt% of graphene reinforced AA2195 hot rolled composite plate at T8 condition (b) corresponding SAED pattern (c) Aluminium - Graphene interface in T8 condition.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

The EBSD analysis of 0.5 wt% of graphene - AA2195 hot rolled plate at T8 condition (a) Grain boundaries map (b) Grain distribution (c) Pole figure of Al 4 Li 2 (d) Pole figure of Al 2 Cu (e) Pole figure of Lithium (f) Pole figure of graphene at graphite phase.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: The EBSD analysis of 0.5 wt% of graphene - AA2195 hot rolled plate at T8 condition (a) Grain boundaries map (b) Grain distribution (c) Pole figure of Al 4 Li 2 (d) Pole figure of Al 2 Cu (e) Pole figure of Lithium (f) Pole figure of graphene at graphite phase.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

(a) Kikuchi pattern of α-aluminium grain (b) lattice structure of α-aluminium grain (c) Kikuchi pattern of silver particles (d) lattice structure of silver particles (e) Kikuchi pattern of 2D - graphene sheets (f) lattice structure of 2D - graphene sheets (g) Mapping of lattice structures and plane orientation angles (h) TEM image of TKD analysis.

Journal: Heliyon

Article Title: Property evaluation of graphene - reinforced Al-Cu-Li (2195) alloy for lightweight structural applications

doi: 10.1016/j.heliyon.2024.e40706

Figure Lengend Snippet: (a) Kikuchi pattern of α-aluminium grain (b) lattice structure of α-aluminium grain (c) Kikuchi pattern of silver particles (d) lattice structure of silver particles (e) Kikuchi pattern of 2D - graphene sheets (f) lattice structure of 2D - graphene sheets (g) Mapping of lattice structures and plane orientation angles (h) TEM image of TKD analysis.

Article Snippet: Two-dimensional (2D) graphene sheets were procured from Angstron Materials Inc., USA, with a specific surface area of approximately 600 m 2 /g of 2–3 layers, dimensions of 10 μm in length and 5 nm in thickness which is shown in .

Techniques:

Efficacy comparison of selected antiviral NPs based on HS/SA mimetic structures, including a few historic examples but mostly recent formulations where EC 50 /IC 50 values or curves were available.

Journal: Smart Medicine

Article Title: Pathogen‐binding nanoparticles to inhibit host cell infection by heparan sulfate and sialic acid dependent viruses and protozoan parasites

doi: 10.1002/SMMD.20230046

Figure Lengend Snippet: Efficacy comparison of selected antiviral NPs based on HS/SA mimetic structures, including a few historic examples but mostly recent formulations where EC 50 /IC 50 values or curves were available.

Article Snippet: The same 2D graphene platform was also effective against IAV by substituting the sulfates with SA moieties.

Techniques: Comparison, Virus, Animal Model

Non‐spherical nanodesigns for virus inhibition. (A) Schematic of heparin/HS modified T1 DNA origami shells and corresponding electron micrographs showing successful caging of various virus types (Scale bar, 100 nm). Modified and reprinted under terms of the CC‐BY license. <xref ref-type= 106 Copyright 2022, The Authors, published by American Chemical Society. (B) 2D graphene nanosheets with sulfated dendritic groups and hydrophobic chains (≥10 carbons in length) achieved potent SARS‐CoV‐2 inhibition with a virucidal mechanism (bottom images show plaque assay). *** p < 0.001. Modified and reprinted under terms of the CC‐BY license. 57 Copyright 2021, The Authors, published by John Wiley and Sons. HS, heparan sulfate. " width="100%" height="100%">

Journal: Smart Medicine

Article Title: Pathogen‐binding nanoparticles to inhibit host cell infection by heparan sulfate and sialic acid dependent viruses and protozoan parasites

doi: 10.1002/SMMD.20230046

Figure Lengend Snippet: Non‐spherical nanodesigns for virus inhibition. (A) Schematic of heparin/HS modified T1 DNA origami shells and corresponding electron micrographs showing successful caging of various virus types (Scale bar, 100 nm). Modified and reprinted under terms of the CC‐BY license. 106 Copyright 2022, The Authors, published by American Chemical Society. (B) 2D graphene nanosheets with sulfated dendritic groups and hydrophobic chains (≥10 carbons in length) achieved potent SARS‐CoV‐2 inhibition with a virucidal mechanism (bottom images show plaque assay). *** p < 0.001. Modified and reprinted under terms of the CC‐BY license. 57 Copyright 2021, The Authors, published by John Wiley and Sons. HS, heparan sulfate.

Article Snippet: The same 2D graphene platform was also effective against IAV by substituting the sulfates with SA moieties.

Techniques: Virus, Inhibition, Modification, Plaque Assay