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Microelectrodes Inc in-line oxygen probes
In Line Oxygen Probes, supplied by Microelectrodes Inc, 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/result/in-line oxygen probes/product/Microelectrodes Inc
Average 90 stars, based on 1 article reviews
in-line oxygen probes - by Bioz Stars, 2026-05
90/100 stars

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Figure 5. WDS <t>oxygen</t> <t>Kα</t> line scan across the weld line of specimen W9.
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Characterization of R-I-LA NPs. (A) TEM images of I-LA NPs and R-I-LA NPs. (B) CLSM images of R-I-LA NPs. (C) Western blotting analysis of CD47. (D) Size distribution of I-LA NPs and R-I-LA NPs. (E) Zeta potential of I-LA NPs and R-I-LA NPs. (F) Stability of R-I-LA NPs based on DLS and PDI. (G) UV–vis–NIR absorbance spectra of different NPs (free IR780, R-LA NPs, R-I NPs, and R-I-LA NPs). (H) UV–vis–NIR absorbance spectra of free IR780 at elevated concentrations. (I) <t>SOSG</t> <t>fluorescence</t> intensity of R-I-LA NPs during LIFU irradiation. (J) LIFU irradiation time-dependent singlet oxygen ( 1 O 2 ) yield of different NPs (R-LA NPs, R-I NPs, and R-I-LA NPs). (K) UV–vis absorption of the R-I-LA NPs solution after adding Griess reagent during LIFU irradiation. The experiments were repeated thrice independently. ANOVA with Tukey’s post-hoc test.
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Characterization of R-I-LA NPs. (A) TEM images of I-LA NPs and R-I-LA NPs. (B) CLSM images of R-I-LA NPs. (C) Western blotting analysis of CD47. (D) Size distribution of I-LA NPs and R-I-LA NPs. (E) Zeta potential of I-LA NPs and R-I-LA NPs. (F) Stability of R-I-LA NPs based on DLS and PDI. (G) UV–vis–NIR absorbance spectra of different NPs (free IR780, R-LA NPs, R-I NPs, and R-I-LA NPs). (H) UV–vis–NIR absorbance spectra of free IR780 at elevated concentrations. (I) <t>SOSG</t> <t>fluorescence</t> intensity of R-I-LA NPs during LIFU irradiation. (J) LIFU irradiation time-dependent singlet oxygen ( 1 O 2 ) yield of different NPs (R-LA NPs, R-I NPs, and R-I-LA NPs). (K) UV–vis absorption of the R-I-LA NPs solution after adding Griess reagent during LIFU irradiation. The experiments were repeated thrice independently. ANOVA with Tukey’s post-hoc test.
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YSI Inc on-line dissolved oxygen probe ysi 5739
Characterization of R-I-LA NPs. (A) TEM images of I-LA NPs and R-I-LA NPs. (B) CLSM images of R-I-LA NPs. (C) Western blotting analysis of CD47. (D) Size distribution of I-LA NPs and R-I-LA NPs. (E) Zeta potential of I-LA NPs and R-I-LA NPs. (F) Stability of R-I-LA NPs based on DLS and PDI. (G) UV–vis–NIR absorbance spectra of different NPs (free IR780, R-LA NPs, R-I NPs, and R-I-LA NPs). (H) UV–vis–NIR absorbance spectra of free IR780 at elevated concentrations. (I) <t>SOSG</t> <t>fluorescence</t> intensity of R-I-LA NPs during LIFU irradiation. (J) LIFU irradiation time-dependent singlet oxygen ( 1 O 2 ) yield of different NPs (R-LA NPs, R-I NPs, and R-I-LA NPs). (K) UV–vis absorption of the R-I-LA NPs solution after adding Griess reagent during LIFU irradiation. The experiments were repeated thrice independently. ANOVA with Tukey’s post-hoc test.
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Image Search Results


Figure 5. WDS oxygen Kα line scan across the weld line of specimen W9.

Journal: Journal of Manufacturing and Materials Processing

Article Title: Shielded Active Gas Forge Welding of an L80 Steel in a Small Scale Shielded Active Gas Forge Welding Machine

doi: 10.3390/jmmp5010016

Figure Lengend Snippet: Figure 5. WDS oxygen Kα line scan across the weld line of specimen W9.

Article Snippet: For this purpose, qualitative oxygen Kα line scans were performed across the weld line at several locations in a JXA-8500F electron microprobe analyser (JEOL, Tokyo, Japan) applying an LDE1 crystal, an acceleration voltage of 10 kV, a probe current of 40 nA, and a dwell time of 2 s at each analysed point.

Techniques:

Characterization of R-I-LA NPs. (A) TEM images of I-LA NPs and R-I-LA NPs. (B) CLSM images of R-I-LA NPs. (C) Western blotting analysis of CD47. (D) Size distribution of I-LA NPs and R-I-LA NPs. (E) Zeta potential of I-LA NPs and R-I-LA NPs. (F) Stability of R-I-LA NPs based on DLS and PDI. (G) UV–vis–NIR absorbance spectra of different NPs (free IR780, R-LA NPs, R-I NPs, and R-I-LA NPs). (H) UV–vis–NIR absorbance spectra of free IR780 at elevated concentrations. (I) SOSG fluorescence intensity of R-I-LA NPs during LIFU irradiation. (J) LIFU irradiation time-dependent singlet oxygen ( 1 O 2 ) yield of different NPs (R-LA NPs, R-I NPs, and R-I-LA NPs). (K) UV–vis absorption of the R-I-LA NPs solution after adding Griess reagent during LIFU irradiation. The experiments were repeated thrice independently. ANOVA with Tukey’s post-hoc test.

Journal: Biomaterials Research

Article Title: Sono-Gas-Mediated Precise Stiffness Remodeling for Triple-Negative Breast Cancer Mechanical Immunotherapy

doi: 10.34133/bmr.0207

Figure Lengend Snippet: Characterization of R-I-LA NPs. (A) TEM images of I-LA NPs and R-I-LA NPs. (B) CLSM images of R-I-LA NPs. (C) Western blotting analysis of CD47. (D) Size distribution of I-LA NPs and R-I-LA NPs. (E) Zeta potential of I-LA NPs and R-I-LA NPs. (F) Stability of R-I-LA NPs based on DLS and PDI. (G) UV–vis–NIR absorbance spectra of different NPs (free IR780, R-LA NPs, R-I NPs, and R-I-LA NPs). (H) UV–vis–NIR absorbance spectra of free IR780 at elevated concentrations. (I) SOSG fluorescence intensity of R-I-LA NPs during LIFU irradiation. (J) LIFU irradiation time-dependent singlet oxygen ( 1 O 2 ) yield of different NPs (R-LA NPs, R-I NPs, and R-I-LA NPs). (K) UV–vis absorption of the R-I-LA NPs solution after adding Griess reagent during LIFU irradiation. The experiments were repeated thrice independently. ANOVA with Tukey’s post-hoc test.

Article Snippet: The single-line oxygen fluorescence probe (SOSG) was purchased from Thermo Fisher Scientific in the United States.

Techniques: Western Blot, Zeta Potential Analyzer, Fluorescence, Irradiation