coxem cx 200 sem Search Results


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COXEM Co Ltd scanning electron microscope sem cx-200
Scanning Electron Microscope Sem Cx 200, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd sem cx-200tm
Sem Cx 200tm, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Ltd scanning electron microscope cx-200
(a) Optical micrograph of shape memory nickeltitanium (NiTi) alloy (black circle denotes the martensite variant of the grain), (b) scanning electron <t>microscope</t> micrograph (white circle denotes the martensite variant); holes (black arrow) and precipitates (white arrow) in the NiTi matrix are present, (c) EDS spectrum showing the elemental composition
Scanning Electron Microscope Cx 200, supplied by COXEM Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/coxem+cx+200+sem/pmc04502124-38-22-26?v=COXEM+Ltd
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scanning electron microscope cx-200 - by Bioz Stars, 2026-08
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COXEM Co Ltd scanning electron microscopy sem coxem cx-100s
(a) Optical micrograph of shape memory nickeltitanium (NiTi) alloy (black circle denotes the martensite variant of the grain), (b) scanning electron <t>microscope</t> micrograph (white circle denotes the martensite variant); holes (black arrow) and precipitates (white arrow) in the NiTi matrix are present, (c) EDS spectrum showing the elemental composition
Scanning Electron Microscopy Sem Coxem Cx 100s, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Ltd scanning electron microscope cx-100s
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Scanning Electron Microscope Cx 100s, supplied by COXEM Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Coxem Em3ax Plus, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd sem korean coxem-20
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Sem Korean Coxem 20, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd kic-ia coxem ion coater
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Kic Ia Coxem Ion Coater, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd particle analyzer
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Particle Analyzer, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd scanning electron microscope coxem em-30ax
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Scanning Electron Microscope Coxem Em 30ax, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd desktop scanning electron microscope (sem)
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Desktop Scanning Electron Microscope (Sem), supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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COXEM Co Ltd digital ion coater spt-20
Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron <t>microscope</t> (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.
Digital Ion Coater Spt 20, supplied by COXEM Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Image Search Results


(a) Optical micrograph of shape memory nickeltitanium (NiTi) alloy (black circle denotes the martensite variant of the grain), (b) scanning electron microscope micrograph (white circle denotes the martensite variant); holes (black arrow) and precipitates (white arrow) in the NiTi matrix are present, (c) EDS spectrum showing the elemental composition

Journal: Journal of Conservative Dentistry : JCD

Article Title: Microstructure of cryogenically treated martensitic shape memory nickel-titanium alloy

doi: 10.4103/0972-0707.159727

Figure Lengend Snippet: (a) Optical micrograph of shape memory nickeltitanium (NiTi) alloy (black circle denotes the martensite variant of the grain), (b) scanning electron microscope micrograph (white circle denotes the martensite variant); holes (black arrow) and precipitates (white arrow) in the NiTi matrix are present, (c) EDS spectrum showing the elemental composition

Article Snippet: The elemental composition of different zones namely, the matrix, grain boundaries, martensitic variants and precipitates was determined for the SM alloy using scanning electron microscope (CX-200; Coxem Ltd., Daejeon, South Korea) coupled to energy dispersive X-ray spectrometer (SEM-EDS).

Techniques: Variant Assay, Microscopy

Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron microscope (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.

Journal: Neural Regeneration Research

Article Title: Decellularized sciatic nerve matrix as a biodegradable conduit for peripheral nerve regeneration

doi: 10.4103/1673-5374.237126

Figure Lengend Snippet: Morphologic structure of silicone conduit and GFNC. (A) The silicone conduit had a hollow cylindrical shape with an inner diameter of 1.5 mm. (B, C) Scanning electron microscope (SEM) images. The porous structure of the GFNC was filled with nerve growth factor, brain-derived neurotrophic factor, and laminin (arrows), making the GFNC ideal for promoting axonal growth and nerve regeneration; inner diameter of the GFNC was 1.5 mm (D), SEM images (E, F). Scale bars: 1000 μm in B and E, 150 μm in C and F. GFNC: Growth factor nerve conduit.

Article Snippet: We used a scanning electron microscope (SEM, CX-100S, COXEM., Ltd., Daejeon, Korea) to analyze the microstructure, confirm the porous conduit structures for axonal regeneration, and scan three-dimensional structures.

Techniques: Microscopy, Derivative Assay

Transmission electron microscope images of the sciatic nerve in each group at 24 weeks. The normal control group had uniform myelin distribution and structure (A). The silicone conduit group showed less homogenization of myelin and relatively more extracellular matrix (ECM) (B). The GFNC group also had decreased myelin thickness, Schwann cell size, and axon number than the normal control group than the silicone conduit group (C), but these indices were similar between the GFNC and the normal control groups. Myelination of the normal control, silicone conduit, and GFNC groups was 61, 24, and 41 units/image, respectively, with 1000x magnification at 24 weeks. Panels D, E, and F depict the Schwann cells (arrows) surrounding the myelin. Scale bars: 5 µm in A–C, and 2 µm in D–F. GFNC: Growth factor nerve conduit.

Journal: Neural Regeneration Research

Article Title: Decellularized sciatic nerve matrix as a biodegradable conduit for peripheral nerve regeneration

doi: 10.4103/1673-5374.237126

Figure Lengend Snippet: Transmission electron microscope images of the sciatic nerve in each group at 24 weeks. The normal control group had uniform myelin distribution and structure (A). The silicone conduit group showed less homogenization of myelin and relatively more extracellular matrix (ECM) (B). The GFNC group also had decreased myelin thickness, Schwann cell size, and axon number than the normal control group than the silicone conduit group (C), but these indices were similar between the GFNC and the normal control groups. Myelination of the normal control, silicone conduit, and GFNC groups was 61, 24, and 41 units/image, respectively, with 1000x magnification at 24 weeks. Panels D, E, and F depict the Schwann cells (arrows) surrounding the myelin. Scale bars: 5 µm in A–C, and 2 µm in D–F. GFNC: Growth factor nerve conduit.

Article Snippet: We used a scanning electron microscope (SEM, CX-100S, COXEM., Ltd., Daejeon, Korea) to analyze the microstructure, confirm the porous conduit structures for axonal regeneration, and scan three-dimensional structures.

Techniques: Transmission Assay, Microscopy, Control, Homogenization