Other — Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks

Measurement evidence

Other

Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks · Sahiner N., Sel K., Ozturk O.F. et al. · Applied Surface Science · 2014 · 663-669

14 measurement groups · 36 results

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

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(CH3COOH)2 (DIW) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount336.8 +/- 6.8+/- 6.8Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.68Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(CH3COOH)2 (EtOH) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount321.8 +/- 4.8+/- 4.8Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.57Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-CuCl2 (DIW) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount305.4 +/- 4.6+/- 4.6Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.45Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(NO3)2 (DIW) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount312.9 +/- 1.0+/- 1.0Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.49Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(NO3)2 (EtOH) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount364.2 +/- 4.0+/- 4.0Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.89Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(SO4)2 (DIW) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount315.4 +/- 4.1+/- 4.1Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio1.52Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Atomic absorption spectroscopy (AAS) after HCl dissolution

TMA-Cu(SO4)2 (EtOH) · Powder

0.1 g MOF dissolved in 50 mL 5 M HCl, diluted 100-fold with DI water; triplicate measurements

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Table 2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu(II) amount379.7 +/- 2.9+/- 2.9Table
Rounded Reported
5 · 3.2 Structural and thermal analysis · Table 2
Cu(II)/TMA mole ratio2.03Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 2

Thermogravimetric analysis (TGA)

TMA-Cu(CH3COOH)2 (DIW) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss60-206 C (9.7%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss269-357 C (44%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss360-1000 C (59.4%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-Cu(CH3COOH)2 (EtOH) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss263-409 C (50.9%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss410-1000 C (62.6%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-CuCl2 (DIW) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss88-196 C (6.8%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss269-366 C (42.5%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss370-1000 C (56.4%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-Cu(NO3)2 (DIW) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss69-198 C (10.8%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss277-360 C (64.3%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss370-1000 C (87.3%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-Cu(NO3)2 (EtOH) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss219-271 C (8.2%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss312-386 C (17.9%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss562-722 C (50.8%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step IV weight loss811-865 C (54.2%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-Cu(SO4)2 (DIW) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss93-198 C (6.6%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss269-370 C (41.5%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss375-1000 C (55.8%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3

Thermogravimetric analysis (TGA)

TMA-Cu(SO4)2 (EtOH) · Powder

3-5 mg sample heated from 50 to 1000 C at 10 C/min under 100 mL/min nitrogen

Context
pristine TMA-Cu MOF sample
Measurement source
3 · 2.4 Spectroscopic and thermal characterization · Fig. 5; Table 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
TGA degradation step I weight loss224-277 C (8.2%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step II weight loss316-376 C (16.9%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step III weight loss576-727 C (54.6%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3
TGA degradation step IV weight loss803-876 C (58.7%)Table
Exact Reported
5 · 3.2 Structural and thermal analysis · Table 3