Diffraction Structure — A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum

Measurement evidence

Diffraction Structure

A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum · Hu Q., Wu J., Ling C. et al. · Journal of the Electrochemical Society · 2023 · 037512

1 measurement group · 3 results

Reported values remain attached to the sample, method, conditions, extraction quality and source location that produced them.

PXRD and FT-IR

Cu-HHTT MOF domains in Cu-HHTT/CF · Unknown

PXRD at room temperature using Rigaku D/MAX 2550 with lambda = 1.5418 A; FT-IR by Nicolet iS 50.

Temperature
room temperature
Context
Cu-HHTT framework component characterised on/in Cu-HHTT/CF
Measurement source
3-4 · Characterization techniques; Material characterization · Fig. 2f-g
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
HHTT carbonyl FTIR band absent after coordination1731 cm^-1 C=O vibration disappears in Cu-HHTTText
Exact Reported
3 · Material characterization · Fig. 2g
Cu-O FTIR vibration523 cm^-1 corresponds to Cu-O vibrationText
Exact Reported
3 · Material characterization · Fig. 2g
PXRD phase assignmentall diffraction peaks of Cu-HHTT are well consistent with the simulation of crystals reported in literatureText
Qualitative
3 · Material characterization · Fig. 2f