Review




Structured Review

Metrohm AG platinum counter electrodes
Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact <t>electrode</t> that had been previously deposited onto a glass substrate.
Platinum Counter Electrodes, supplied by Metrohm AG, 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/platinum+counter+electrodes/platinum+counter+electrode/pmc12114124-97-21-24
Average 90 stars, based on 1 article reviews
platinum counter electrodes - by Bioz Stars, 2026-09
90/100 stars

Images

1) Product Images from "Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites"

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites

Journal: Nanomaterials

doi: 10.3390/nano15100741

Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact electrode that had been previously deposited onto a glass substrate.
Figure Legend Snippet: Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact electrode that had been previously deposited onto a glass substrate.

Techniques Used: Produced, Functional Assay, Membrane, Diffusion-based Assay

( a ) Gold electrodes as deposited onto a glass slide. ( b ) Reaction between acetylacetonate and tetraethyl orthosilicate, as described in .
Figure Legend Snippet: ( a ) Gold electrodes as deposited onto a glass slide. ( b ) Reaction between acetylacetonate and tetraethyl orthosilicate, as described in .

Techniques Used:

( a ) Calibration plot of developed electrodes using different concentrations of Ca 2+ and Mg 2+ ions. Results for ionically imprinted ZrSiO x and F-functionalized silica nanocomposite (Template + F-Np), ionically imprinted ZrSiO x and no F-functionalized silica nanocomposite (Template–F-Np), not templated ZrSiO x and F-functionalized silica nanocomposite (No template + F-Np), and not templated ZrSiO x and no F-functionalized silica nanocomposite (No template–F-Np), are shown. F-functionalized silica nanoparticles denote perfluoroalkane-functionalized silica nanoparticle embedded in plasticized PVC film. ( b ) Comparison of sensitivities obtained using full sensor set up, containing ionically imprinted zirconium silicate nanoparticles and pre-concentration layer containing perfluoroalkane-functionalized silica nanoparticles (orange), ionically imprinted zirconium silicate nanoparticles with no perfluoroalkane-functionalized silica nanoparticles incorporated into the PVC membrane (green) and full device with pre-concentration layer with perfluoroalkane-functionalized silica nanoparticles and non-templated zirconium silicate nanoparticles (blue). Highlighted area in orange indicates standard Nernst sensitivity for monovalent ions. ( c ) Selectivity coefficients for K + and Mg 2+ using Fixed Interference Method. ( d ) Potentiometric signal recorded continuously for 1 h to calculate noise rates before and after 3 months of continuous exposure to 0.1 M CaCl 2 .
Figure Legend Snippet: ( a ) Calibration plot of developed electrodes using different concentrations of Ca 2+ and Mg 2+ ions. Results for ionically imprinted ZrSiO x and F-functionalized silica nanocomposite (Template + F-Np), ionically imprinted ZrSiO x and no F-functionalized silica nanocomposite (Template–F-Np), not templated ZrSiO x and F-functionalized silica nanocomposite (No template + F-Np), and not templated ZrSiO x and no F-functionalized silica nanocomposite (No template–F-Np), are shown. F-functionalized silica nanoparticles denote perfluoroalkane-functionalized silica nanoparticle embedded in plasticized PVC film. ( b ) Comparison of sensitivities obtained using full sensor set up, containing ionically imprinted zirconium silicate nanoparticles and pre-concentration layer containing perfluoroalkane-functionalized silica nanoparticles (orange), ionically imprinted zirconium silicate nanoparticles with no perfluoroalkane-functionalized silica nanoparticles incorporated into the PVC membrane (green) and full device with pre-concentration layer with perfluoroalkane-functionalized silica nanoparticles and non-templated zirconium silicate nanoparticles (blue). Highlighted area in orange indicates standard Nernst sensitivity for monovalent ions. ( c ) Selectivity coefficients for K + and Mg 2+ using Fixed Interference Method. ( d ) Potentiometric signal recorded continuously for 1 h to calculate noise rates before and after 3 months of continuous exposure to 0.1 M CaCl 2 .

Techniques Used: Comparison, Concentration Assay, Membrane

( a ) Schematic representation of dialysis process. ( b ) Waster dialysate samples were taken at 5, 30, 60, and 120 min, and electrolyte profile was determined by ion-selective electrodes.
Figure Legend Snippet: ( a ) Schematic representation of dialysis process. ( b ) Waster dialysate samples were taken at 5, 30, 60, and 120 min, and electrolyte profile was determined by ion-selective electrodes.

Techniques Used:

Related Articles

other:

Article Title: Coating of Epoxy resin and MMT Clay Nano-composite on Copper and Examination of their Corrosion behaviours in NaCl
Article Snippet: Copper (Cu) has high corrosion resistance and does not corrode much in mild environments.. However, Cu may face heavy destruction due to fast interactions with aggressive media.. This work includes epoxy resin (EP) and montmorillonite (MMT) clay nano-composites (EPMC) coating on Cu and testing of coated Cu in 0.5 M NaCl.

Synthesized:

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites.
Article Snippet: .. Electrochemical Characterization of Films For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands). ..

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites
Article Snippet: .. For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands). ..



Similar Products

86
Ted Pella platinum mesh counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Mesh Counter Electrode, supplied by Ted Pella, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/platinum+counter+electrodes/counter+electrode+graphite+rod/pmc13209651-56-4-16
Average 86 stars, based on 1 article reviews
platinum mesh counter electrode - by Bioz Stars, 2026-09
86/100 stars
  Buy from Supplier

86
Strem Chemicals platinum mesh counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Mesh Counter Electrode, supplied by Strem Chemicals, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/platinum+counter+electrodes/counter+electrode+mesh+platinum/pm42096602-57-19-23
Average 86 stars, based on 1 article reviews
platinum mesh counter electrode - by Bioz Stars, 2026-09
86/100 stars
  Buy from Supplier

86
Johnson Matthey 3 14 2027 johnson matthey platinum based counter electrodes
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
3 14 2027 Johnson Matthey Platinum Based Counter Electrodes, supplied by Johnson Matthey, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/platinum+counter+electrodes/based+nanoparticles+platinum/10__1595_slash_205651327x17708941599793-46-28-31
Average 86 stars, based on 1 article reviews
3 14 2027 johnson matthey platinum based counter electrodes - by Bioz Stars, 2026-09
86/100 stars
  Buy from Supplier

86
Johnson Matthey platinum mesh counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Mesh Counter Electrode, supplied by Johnson Matthey, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/platinum+counter+electrodes/counter+electrode+material/10__1595_slash_205651327x17708941599793-52-87-53
Average 86 stars, based on 1 article reviews
platinum mesh counter electrode - by Bioz Stars, 2026-09
86/100 stars
  Buy from Supplier

90
CH Instruments platinum counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Counter Electrode, supplied by CH Instruments, 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/platinum+counter+electrodes/platinum+wire+counter+electrode/pmc10885197__nl3c04446_si_001-24-26-29
Average 90 stars, based on 1 article reviews
platinum counter electrode - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
CH Instruments platinum wire counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Wire Counter Electrode, supplied by CH Instruments, 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/platinum+counter+electrodes/platinum+wire+counter+electrode/pm40140954-176-16-20
Average 90 stars, based on 1 article reviews
platinum wire counter electrode - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
Fisher Scientific platinum wire counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Wire Counter Electrode, supplied by Fisher Scientific, 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/platinum+counter+electrodes/platinum+counter+electrode/pm40533063-240-25-29
Average 90 stars, based on 1 article reviews
platinum wire counter electrode - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
CH Instruments platinum-wire counter electrode
Schematic illustration of the <t>three-electrode</t> electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a <t>platinum</t> <t>mesh</t> <t>counter</t> electrode (CE) and an Ag/AgCl reference electrode (RE).
Platinum Wire Counter Electrode, supplied by CH Instruments, 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/platinum+counter+electrodes/platinum+wire+counter+electrode/pm40499229-399-22-38
Average 90 stars, based on 1 article reviews
platinum-wire counter electrode - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
Metrohm AG platinum counter electrodes
Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact <t>electrode</t> that had been previously deposited onto a glass substrate.
Platinum Counter Electrodes, supplied by Metrohm AG, 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/platinum+counter+electrodes/platinum+counter+electrode/pmc12114124-97-21-24
Average 90 stars, based on 1 article reviews
platinum counter electrodes - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

Image Search Results


Schematic illustration of the three-electrode electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a platinum mesh counter electrode (CE) and an Ag/AgCl reference electrode (RE).

Journal: Nanomaterials

Article Title: Enhancing the Uniformity of Bowl-Shaped Gold Nanoparticles Using a Dynamic System in an Electrochemical Microfluidic Chip

doi: 10.3390/nano16100640

Figure Lengend Snippet: Schematic illustration of the three-electrode electrochemical setup. The stripe-patterned copper electrode functions as the working electrode (WE), complemented by a platinum mesh counter electrode (CE) and an Ag/AgCl reference electrode (RE).

Article Snippet: Electrochemical components, specifically the platinum mesh counter electrode and an Ag/AgCl reference electrode, were acquired from Ted Pella, Redding, CA, USA, and BASi Science, West Lafayette, IN, USA.

Techniques:

Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact electrode that had been previously deposited onto a glass substrate.

Journal: Nanomaterials

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites

doi: 10.3390/nano15100741

Figure Lengend Snippet: Schematic representation of the fabrication process of the sensing device. ( a ) Commercial silica nanoparticles were functionalized using different coupling agents. In all cases, siloxane groups were employed. ( b ) Functionalized silica nanoparticles were produced, with functional groups covalently attached to their surface. Silica nanoparticles also presented negatively charged sites that improved membrane diffusion processes. ( c ) A plasticized polymeric sensing film with silica nanoparticles was deposited by AACD using a pneumatic nebulizer. ( d ) Sensing film was deposited onto a sensitive layer containing Zr/Si nanoparticles, working as sensing agents. This whole device was deposited onto a 50 nm thin gold contact electrode that had been previously deposited onto a glass substrate.

Article Snippet: For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands).

Techniques: Produced, Functional Assay, Membrane, Diffusion-based Assay

( a ) Gold electrodes as deposited onto a glass slide. ( b ) Reaction between acetylacetonate and tetraethyl orthosilicate, as described in .

Journal: Nanomaterials

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites

doi: 10.3390/nano15100741

Figure Lengend Snippet: ( a ) Gold electrodes as deposited onto a glass slide. ( b ) Reaction between acetylacetonate and tetraethyl orthosilicate, as described in .

Article Snippet: For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands).

Techniques:

( a ) Calibration plot of developed electrodes using different concentrations of Ca 2+ and Mg 2+ ions. Results for ionically imprinted ZrSiO x and F-functionalized silica nanocomposite (Template + F-Np), ionically imprinted ZrSiO x and no F-functionalized silica nanocomposite (Template–F-Np), not templated ZrSiO x and F-functionalized silica nanocomposite (No template + F-Np), and not templated ZrSiO x and no F-functionalized silica nanocomposite (No template–F-Np), are shown. F-functionalized silica nanoparticles denote perfluoroalkane-functionalized silica nanoparticle embedded in plasticized PVC film. ( b ) Comparison of sensitivities obtained using full sensor set up, containing ionically imprinted zirconium silicate nanoparticles and pre-concentration layer containing perfluoroalkane-functionalized silica nanoparticles (orange), ionically imprinted zirconium silicate nanoparticles with no perfluoroalkane-functionalized silica nanoparticles incorporated into the PVC membrane (green) and full device with pre-concentration layer with perfluoroalkane-functionalized silica nanoparticles and non-templated zirconium silicate nanoparticles (blue). Highlighted area in orange indicates standard Nernst sensitivity for monovalent ions. ( c ) Selectivity coefficients for K + and Mg 2+ using Fixed Interference Method. ( d ) Potentiometric signal recorded continuously for 1 h to calculate noise rates before and after 3 months of continuous exposure to 0.1 M CaCl 2 .

Journal: Nanomaterials

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites

doi: 10.3390/nano15100741

Figure Lengend Snippet: ( a ) Calibration plot of developed electrodes using different concentrations of Ca 2+ and Mg 2+ ions. Results for ionically imprinted ZrSiO x and F-functionalized silica nanocomposite (Template + F-Np), ionically imprinted ZrSiO x and no F-functionalized silica nanocomposite (Template–F-Np), not templated ZrSiO x and F-functionalized silica nanocomposite (No template + F-Np), and not templated ZrSiO x and no F-functionalized silica nanocomposite (No template–F-Np), are shown. F-functionalized silica nanoparticles denote perfluoroalkane-functionalized silica nanoparticle embedded in plasticized PVC film. ( b ) Comparison of sensitivities obtained using full sensor set up, containing ionically imprinted zirconium silicate nanoparticles and pre-concentration layer containing perfluoroalkane-functionalized silica nanoparticles (orange), ionically imprinted zirconium silicate nanoparticles with no perfluoroalkane-functionalized silica nanoparticles incorporated into the PVC membrane (green) and full device with pre-concentration layer with perfluoroalkane-functionalized silica nanoparticles and non-templated zirconium silicate nanoparticles (blue). Highlighted area in orange indicates standard Nernst sensitivity for monovalent ions. ( c ) Selectivity coefficients for K + and Mg 2+ using Fixed Interference Method. ( d ) Potentiometric signal recorded continuously for 1 h to calculate noise rates before and after 3 months of continuous exposure to 0.1 M CaCl 2 .

Article Snippet: For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands).

Techniques: Comparison, Concentration Assay, Membrane

( a ) Schematic representation of dialysis process. ( b ) Waster dialysate samples were taken at 5, 30, 60, and 120 min, and electrolyte profile was determined by ion-selective electrodes.

Journal: Nanomaterials

Article Title: Calcium Ion Sensors with Unrivaled Stability and Selectivity Using a Bilayer Approach with Ionically Imprinted Nanocomposites

doi: 10.3390/nano15100741

Figure Lengend Snippet: ( a ) Schematic representation of dialysis process. ( b ) Waster dialysate samples were taken at 5, 30, 60, and 120 min, and electrolyte profile was determined by ion-selective electrodes.

Article Snippet: For the assessment of the sensitivity of the synthesized electrodes, a three-electrode configuration was employed using a standard Ag/AgCl reference and platinum counter electrodes (Metrohm, Autolab BV, Oss, The Netherlands).

Techniques: