Spectroscopy — Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform

Measurement evidence

Spectroscopy

Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform · Yang Y., Zhang J.-L., Liang W.-B. et al. · Sensors and Actuators B: Chemical · 2022 · 131802

3 measurement groups · 16 results

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

UV-vis absorption, photoluminescence and ECL emission spectra

Ni-HHTP monometallic MOF control · Powder

Optical spectra of Ni-HHTP control; PL excitation wavelength reported as 257 nm.

Context
Pristine Ni-HHTP optical/ECL spectral behaviour
Measurement source
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S10-S11
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Ni-HHTP ECL emission peak665 nmText
Exact Reported
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S11B,D
Ni-HHTP PL emission maximum419 nmText
Exact Reported
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S11F
Ni-HHTP UV-vis absorption peak 1266 nmText
Exact Reported
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S10
Ni-HHTP UV-vis absorption peak 2349 nmText
Exact Reported
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S10
Ni-HHTP UV-vis absorption peak 3605 nmText
Exact Reported
12 · S-2.11 Spectral characteristics of HHTP and Ni-HHTP · Fig. S10

UV-vis absorption, photoluminescence and ECL emission spectra

NiCo-HHTP nanorods · Powder

Optical properties of NiCo-HHTP; PL excitation wavelength reported as 259 nm.

Context
Pristine NiCo-HHTP optical/ECL spectral behaviour
Measurement source
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. 3B-D; Fig. S9
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NiCo-HHTP ECL emission peakMarked as a best value within this paper667 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. 3C-D
ECL red shift versus PL226 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. 3B-D
NiCo-HHTP UV-vis absorption peak 1210 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. S9
NiCo-HHTP UV-vis absorption peak 2261 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. S9
NiCo-HHTP UV-vis absorption peak 3345 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. S9
NiCo-HHTP UV-vis absorption peak 4588 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. S9
NiCo-HHTP PL emission maximum441 nmText
Exact Reported
4 · 3.4 Spectral characteristics of NiCo-HHTP nanorods · Fig. 3B

X-ray photoelectron spectroscopy (XPS)

NiCo-HHTP nanorods · Powder

Survey and high-resolution Ni 2p and Co 2p spectra used to assign elements and valence states.

Context
Pristine NiCo-HHTP chemical composition
Measurement source
3 · 3.1 Microstructure of NiCo-HHTP nanorods · Fig. S6
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Co 2p1/2 XPS peak797.7 eVText
Exact Reported
3 · 3.1 Microstructure of NiCo-HHTP nanorods · Fig. S6C
Co 2p3/2 XPS peak781.3 eVText
Exact Reported
3 · 3.1 Microstructure of NiCo-HHTP nanorods · Fig. S6C
Ni 2p1/2 XPS peak874.4 eVText
Exact Reported
3 · 3.1 Microstructure of NiCo-HHTP nanorods · Fig. S6B
Ni 2p3/2 XPS peak856.7 eVText
Exact Reported
3 · 3.1 Microstructure of NiCo-HHTP nanorods · Fig. S6B