variable-pressure scanning electron microscope (vp-sem quanta 200 feg sem Search Results


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Hitachi Ltd su5000 variable pressure field emission scanning electron microscope fe sem
Su5000 Variable Pressure Field Emission Scanning Electron Microscope Fe Sem, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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JEOL jsm 6490la variable pressure microscope
Jsm 6490la Variable Pressure Microscope, supplied by JEOL, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Hitachi Ltd variable pressure scanning electron microscope
Variable Pressure Scanning Electron Microscope, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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JEOL variable pressure scanning electron microscope jeol model jsm 6360 lv
Variable Pressure Scanning Electron Microscope Jeol Model Jsm 6360 Lv, supplied by JEOL, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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TESCAN USA Inc mira xmu variable pressure field emission scanning electron microscope–feg sem
Mira Xmu Variable Pressure Field Emission Scanning Electron Microscope–Feg Sem, supplied by TESCAN USA Inc, 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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JEOL variable pressure scanning electron microscope
Figure 4. FESEM (Field emission scanning electron <t>microscope)</t> micrograph showing the morphology of fly ash particles.
Variable Pressure Scanning Electron Microscope, supplied by JEOL, used in various techniques. Bioz Stars score: 97/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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LEO Electron Microscopy Inc variable pressure scanning electron microscope leo 1455vpsem
Figure 4. FESEM (Field emission scanning electron <t>microscope)</t> micrograph showing the morphology of fly ash particles.
Variable Pressure Scanning Electron Microscope Leo 1455vpsem, supplied by LEO Electron Microscopy Inc, 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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Hitachi Ltd electron microscope
RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking <t>microscope.</t> (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.
Electron Microscope, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Average 96 stars, based on 1 article reviews
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JEOL jsm 6010la variable pressure
RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking <t>microscope.</t> (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.
Jsm 6010la Variable Pressure, supplied by JEOL, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/variable-pressure+scanning+electron+microscope+(vp-sem+quanta+200+feg+sem/JSM-6010LA+Scanning+Electron+Microscope/pm27339105-40-20-19
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JEOL jeol 6060lv variable pressure
RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking <t>microscope.</t> (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.
Jeol 6060lv Variable Pressure, supplied by JEOL, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/variable-pressure+scanning+electron+microscope+(vp-sem+quanta+200+feg+sem/JSM-6060_6060LV+Scanning+Electron+Microscope/pm32864887-246-13-13
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JEOL jsm 6460lv variable pressure sem
RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking <t>microscope.</t> (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.
Jsm 6460lv Variable Pressure Sem, supplied by JEOL, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/variable-pressure+scanning+electron+microscope+(vp-sem+quanta+200+feg+sem/JSM-6460_6460LV+Scanning+Electron+Microscope/pm20336725-57-11-10
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99
Oxford Instruments scanning electron microscope
RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking <t>microscope.</t> (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.
Scanning Electron Microscope, supplied by Oxford Instruments, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Image Search Results


Figure 4. FESEM (Field emission scanning electron microscope) micrograph showing the morphology of fly ash particles.

Journal: Metals

Article Title: Effect of Fly Ash Addition on the Physical and Mechanical Properties of AA6063 Alloy Reinforcement

doi: 10.3390/met7110477

Figure Lengend Snippet: Figure 4. FESEM (Field emission scanning electron microscope) micrograph showing the morphology of fly ash particles.

Article Snippet: Following the mechanical tests applied to all the AA6063-FA composites, the fractured surfaces were examined under Variable Pressure Scanning Electron Microscope (VP-SEM JSM-IT300; JEOL, Akishima, Japan) to understand the fracture mechanism in AA6063-FA composites.

Techniques: Microscopy

Figure 5. EDS (Energy dispersive X-ray spectroscope) elemental mapping of the raw fly ash powder: (a) SEM (Scanning electron microscope) image; (b) EDS spectrum of fly ash; and (c) corresponding elemental mapping of Si, Al, O, Fe, K, Ti and Ca, respectively.

Journal: Metals

Article Title: Effect of Fly Ash Addition on the Physical and Mechanical Properties of AA6063 Alloy Reinforcement

doi: 10.3390/met7110477

Figure Lengend Snippet: Figure 5. EDS (Energy dispersive X-ray spectroscope) elemental mapping of the raw fly ash powder: (a) SEM (Scanning electron microscope) image; (b) EDS spectrum of fly ash; and (c) corresponding elemental mapping of Si, Al, O, Fe, K, Ti and Ca, respectively.

Article Snippet: Following the mechanical tests applied to all the AA6063-FA composites, the fractured surfaces were examined under Variable Pressure Scanning Electron Microscope (VP-SEM JSM-IT300; JEOL, Akishima, Japan) to understand the fracture mechanism in AA6063-FA composites.

Techniques: Microscopy

Figure 8. VP-SEM (Variable pressure scanning electron microscope) micrograph of the fly ash grains with group of pores in the surface of AA6063-FA composite (12 wt % fly ash).

Journal: Metals

Article Title: Effect of Fly Ash Addition on the Physical and Mechanical Properties of AA6063 Alloy Reinforcement

doi: 10.3390/met7110477

Figure Lengend Snippet: Figure 8. VP-SEM (Variable pressure scanning electron microscope) micrograph of the fly ash grains with group of pores in the surface of AA6063-FA composite (12 wt % fly ash).

Article Snippet: Following the mechanical tests applied to all the AA6063-FA composites, the fractured surfaces were examined under Variable Pressure Scanning Electron Microscope (VP-SEM JSM-IT300; JEOL, Akishima, Japan) to understand the fracture mechanism in AA6063-FA composites.

Techniques: Microscopy

RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking microscope. (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.

Journal: Lab on a chip

Article Title: Nano-injection molding with resin mold inserts for prototyping of nanofluidic devices for single molecular detection

doi: 10.1039/d3lc00543g

Figure Lengend Snippet: RNA translocation through an injection molded single-molecule sequencing device. (A) Experimental setup showing the electrical connections to the chip with a waveform generator for supplying the electrical field for driving the RNA (CAS9) through the chip. (B) Rapid scanning confocal image of the single-molecule sequencing device with the yellow box showing the area that is imaged with the single-molecule laser-induced fluorescence tracking microscope. (C) Fluorescence image Syto 82 labeled RNA electrically translocating through the input/output channels of the mixed-scale sequencing device. In this case, there was no ribo-exonuclease covalently attached to the solid-phase bioreactor portion of the device. Also, this device did not contain the in-plane nanopores within the input/output channel network. (D) Same conditions as shown and discussed in (C), but in this case, there was XRN1 ribo-exonuclease attached to the solid-phase bioreactor, which associates to the translocating RNA molecule causing it to remain stationary.

Article Snippet: Metrology of micro- and nanostructures The Si master and injection molded devices containing micro/nano structures were analyzed using a variable pressure scanning electron microscope (SEM, Hitachi FlexSEM 1000 II, Hitachi High Tech, Schaumburg, IL) and atomic force microscope (AFM).

Techniques: Translocation Assay, Injection, Sequencing, Fluorescence, Microscopy, Labeling