Other — Two-dimensional d-π conjugated metal-organic framework based on hexahydroxytrinaphthylene

Measurement evidence

Other

Two-dimensional d-π conjugated metal-organic framework based on hexahydroxytrinaphthylene · Meng Z., Mirica K.A. · Nano Research · 2021 · 369-375

2 measurement groups · 5 results

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

TGA of iodine-doped Cu3(HHTN)2

iodine-doped Cu3(HHTN)2 powder · Powder

TGA profile compared with pristine Cu3(HHTN)2.

Context
doped framework compared with pristine
Measurement source
18 · S11 I2 Doping Study of Cu3(HHTN)2 · Fig. S32
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
iodine-doped TGA initial weight lossabout 6% at 167 °CaboutText
Approximate
18 · S11 I2 Doping Study of Cu3(HHTN)2 · Fig. S32
iodine-doped TGA weight loss to 600 °Cabout 35% at 600 °CaboutText
Approximate
18 · S11 I2 Doping Study of Cu3(HHTN)2 · Fig. S32
iodine-doped TGA total weight loss at 900 °C80% at 900 °CText
Exact Reported
18 · S11 I2 Doping Study of Cu3(HHTN)2 · Fig. S32

Thermogravimetric analysis (TGA)

as-synthesised Cu3(HHTN)2 dark brown powder · Powder

TGA Q50 V5.0 under nitrogen with 20 °C/min heating rate.

Atmosphere
nitrogen
Context
pristine target framework
Measurement source
13 · S8 Thermal Gravimetric Analysis (TGA) · Fig. S23
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
pristine TGA weight loss at 279 °Cabout 25% when raised to 279 °CaboutText
Approximate
13 · S8 Thermal Gravimetric Analysis (TGA) · Fig. S23
pristine TGA initial weight lossabout 4% before 130 °CaboutText
Approximate
13 · S8 Thermal Gravimetric Analysis (TGA) · Fig. S23