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Biolin Research Inc qcm gold coated sensor chips
Qcm Gold Coated Sensor Chips, supplied by Biolin Research Inc, 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/qcm+gold+coated+sensor+chips/coated+employed+gold+qsx301+sensors+setup/10__1016_slash_j__snb__2025__138154-137-24-28
Average 86 stars, based on 1 article reviews
qcm gold coated sensor chips - by Bioz Stars, 2026-10
86/100 stars

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Article Title: Coupled quartz crystal microbalance – Surface enhanced Raman scattering strategy for the design and testing of aptasensors for small analytes
Article Snippet: Both quartz crystal microbalance with dissipation (QCM-D) and Surface Enhanced Raman Scattering (SERS) stand at the forefront of label-free transducing techniques to trace and monitor biomolecular association events occurring at solid-liquid interfaces.. Although these techniques provide highly complementary information on thin films’ structure and molecular composition, they have never been simultaneously coupled in a single sensor element.. We report herein the design of nanostructured gold-coated quartz crystal sensors acting as bimodal transducer elements to subsequentially or even in parallel and in situ monitor biomolecular recognition events by QCM-D and SERS.

Microscopy:

Article Title: Coupled quartz crystal microbalance – Surface enhanced Raman scattering strategy for the design and testing of aptasensors for small analytes
Article Snippet: Both quartz crystal microbalance with dissipation (QCM-D) and Surface Enhanced Raman Scattering (SERS) stand at the forefront of label-free transducing techniques to trace and monitor biomolecular association events occurring at solid-liquid interfaces.. Although these techniques provide highly complementary information on thin films’ structure and molecular composition, they have never been simultaneously coupled in a single sensor element.. We report herein the design of nanostructured gold-coated quartz crystal sensors acting as bimodal transducer elements to subsequentially or even in parallel and in situ monitor biomolecular recognition events by QCM-D and SERS.



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<t>(A)</t> <t>QCM-D</t> Δf and dissipation (ΔD) shifts as a function of time for lipid bicelle and vesicle adsorption onto bare gold surfaces. (B) Magnitude of final Δf and (C) ΔD shifts corresponding to data in panel (A). (D) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC11-OH-functionalized gold surfaces. (E) Magnitude of final Δf and (F) ΔD shifts corresponding to data in panel. (G) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC18-functionalized gold surfaces. Magnitude of final (H) Δf and (I) ΔD shifts corresponding to data in panel (G). Data are expressed as mean ± standard error of the mean for n = 4 runs, and statistical significance was determined by using the Student’s t-test (*p<0.05, **p<0.01, and ***p<0.001).
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3T analytik 10 mhz at-cut gold coated qcm sensor chips
<t>(A)</t> <t>QCM-D</t> Δf and dissipation (ΔD) shifts as a function of time for lipid bicelle and vesicle adsorption onto bare gold surfaces. (B) Magnitude of final Δf and (C) ΔD shifts corresponding to data in panel (A). (D) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC11-OH-functionalized gold surfaces. (E) Magnitude of final Δf and (F) ΔD shifts corresponding to data in panel. (G) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC18-functionalized gold surfaces. Magnitude of final (H) Δf and (I) ΔD shifts corresponding to data in panel (G). Data are expressed as mean ± standard error of the mean for n = 4 runs, and statistical significance was determined by using the Student’s t-test (*p<0.05, **p<0.01, and ***p<0.001).
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(A) QCM-D Δf and dissipation (ΔD) shifts as a function of time for lipid bicelle and vesicle adsorption onto bare gold surfaces. (B) Magnitude of final Δf and (C) ΔD shifts corresponding to data in panel (A). (D) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC11-OH-functionalized gold surfaces. (E) Magnitude of final Δf and (F) ΔD shifts corresponding to data in panel. (G) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC18-functionalized gold surfaces. Magnitude of final (H) Δf and (I) ΔD shifts corresponding to data in panel (G). Data are expressed as mean ± standard error of the mean for n = 4 runs, and statistical significance was determined by using the Student’s t-test (*p<0.05, **p<0.01, and ***p<0.001).

Journal: ACS applied materials & interfaces

Article Title: Lipid Bicelle Micropatterning Using Chemical Lift-Off Lithography

doi: 10.1021/acsami.9b20617

Figure Lengend Snippet: (A) QCM-D Δf and dissipation (ΔD) shifts as a function of time for lipid bicelle and vesicle adsorption onto bare gold surfaces. (B) Magnitude of final Δf and (C) ΔD shifts corresponding to data in panel (A). (D) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC11-OH-functionalized gold surfaces. (E) Magnitude of final Δf and (F) ΔD shifts corresponding to data in panel. (G) QCM-D Δf and ΔD shifts as a function of time for lipid bicelle and vesicle adsorption onto HSC18-functionalized gold surfaces. Magnitude of final (H) Δf and (I) ΔD shifts corresponding to data in panel (G). Data are expressed as mean ± standard error of the mean for n = 4 runs, and statistical significance was determined by using the Student’s t-test (*p<0.05, **p<0.01, and ***p<0.001).

Article Snippet: Gold-coated QCM-D sensor chips (QSX 301, Biolin Scientific AB) were used for all experiments and were washed with ethanol and water, dried with nitrogen gas, and then treated with oxygen plasma for 1 min in a plasma cleaner (PDC-002, Harrick Plasma, Ithaca, NY).

Techniques: QCM-D, Adsorption