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Assessing the reactivity of cellulosic
pulps by dynamic vapor sorption
analysis
Saija Väisänen, Raili Pönni,
Tapani Vuorinen
5.6.2015
Cellulose: a versatile raw material
Understanding cellulose reactivity enhances the
development of new products
• Amount of accessible OH-groups in cellulose influences the
reactivity of cellulose during different chemical and enzymatic
treatments
• DVS combined with D2O exchange is a direct method to assess
the amount of accessible OH-groups
Dynamic Vapor Sorption (DVS)
• Sorption rate measurement
• Measured variable: mass change
of sample (balance accuracy: 0,1 µg)
• Changed variable: relative humidity
(RH%)
• Solvent: water, D2O, organic solvent
DVS combined with D2O exchange
• Hydrogens in accessible OH-groups are replaced by deuterium in
the sample by applying 95% RH of D2O vapour
• Deuterium heavier than hydrogen -> replacement can be
monitored by weight gain
D2O
Cellulose microfibril
OH
OD
Determination of accessible OH groups is based on
increase in weigth
The atomic mass difference between
deuterium (2H) and protium (1H) is 1 g/mol
Accessible OH groups (mol/kg)
A = × 1000
-> Accurate measurement of the dry
masses is important!
Measurement sequence
1) Predrying at RH 0% until the change in
mass < 0,0005 %/min for 10 min (~ 7 h)
2) RH 95% for 600 min (10 h)
3) Final drying at RH 0% until the change in
mass < 0,0005 %/min for 10 min (~ 7 h)
Samples
• Industrially dried pulps
- Softwood kraft (DK)
- Hardwood dissolving (DD)
• Never dried hardwood pulps
- Kraft (NDK)
- Dissolving (NDD)
- Critical point dried kraft (NDK_CPD)
- Critical point dried dissolving (NDD_CPD)
• Avicel (commercial microcrystalline cellulose powder)
Relative mass vs time
0 200 400 600 800 1000 1200 1400 1600
1,0
1,1
1,2
2,5
2,6
m/m,final
Time (min)
NDK
NDK_CPD
DK
DD
NDD_CPD
NDD
Avicel
0 100 200 300 400 500 600
0
5
10
15
20
EMC%
Time (min)
NDK
NDK_CPD
DK
NDD
NDD_CPD
DD
Avicel
Equilibrium moisture content vs time
Calculated accessibility values (mol/kg)
A = × 1000
Equilibrium moisture contents
Equilibrium moisture contents vs water retention
values
Summary
• We have applied a method to assess the reactivity of cellulose
in pulp fibers
- Based on DVS combined with D2O exchange
- Direct assessment of the absolute amount of accessible hydroxyl groups
• Correlation between accessibility and WRV for dried samples
• Accessibility of ND pulps was relatively low
-> Drying during measurements affects accessibility and/or samples don’t
dry enough during the measurements
-> EMC% correlates with WRV
-> Further studies needed
Acknowledgments
A special thank you to Mr Ville Lovikka for preparing the critical point
dried samples

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FIBIC ACel Programme Seminar: Assessing the reactivity of cellulosic pulps by dynamic vapor sorption analysis

  • 1. Assessing the reactivity of cellulosic pulps by dynamic vapor sorption analysis Saija Väisänen, Raili Pönni, Tapani Vuorinen 5.6.2015
  • 2. Cellulose: a versatile raw material
  • 3. Understanding cellulose reactivity enhances the development of new products • Amount of accessible OH-groups in cellulose influences the reactivity of cellulose during different chemical and enzymatic treatments • DVS combined with D2O exchange is a direct method to assess the amount of accessible OH-groups
  • 4. Dynamic Vapor Sorption (DVS) • Sorption rate measurement • Measured variable: mass change of sample (balance accuracy: 0,1 µg) • Changed variable: relative humidity (RH%) • Solvent: water, D2O, organic solvent
  • 5. DVS combined with D2O exchange • Hydrogens in accessible OH-groups are replaced by deuterium in the sample by applying 95% RH of D2O vapour • Deuterium heavier than hydrogen -> replacement can be monitored by weight gain D2O Cellulose microfibril OH OD
  • 6. Determination of accessible OH groups is based on increase in weigth The atomic mass difference between deuterium (2H) and protium (1H) is 1 g/mol Accessible OH groups (mol/kg) A = × 1000 -> Accurate measurement of the dry masses is important!
  • 7. Measurement sequence 1) Predrying at RH 0% until the change in mass < 0,0005 %/min for 10 min (~ 7 h) 2) RH 95% for 600 min (10 h) 3) Final drying at RH 0% until the change in mass < 0,0005 %/min for 10 min (~ 7 h)
  • 8. Samples • Industrially dried pulps - Softwood kraft (DK) - Hardwood dissolving (DD) • Never dried hardwood pulps - Kraft (NDK) - Dissolving (NDD) - Critical point dried kraft (NDK_CPD) - Critical point dried dissolving (NDD_CPD) • Avicel (commercial microcrystalline cellulose powder)
  • 9. Relative mass vs time 0 200 400 600 800 1000 1200 1400 1600 1,0 1,1 1,2 2,5 2,6 m/m,final Time (min) NDK NDK_CPD DK DD NDD_CPD NDD Avicel
  • 10. 0 100 200 300 400 500 600 0 5 10 15 20 EMC% Time (min) NDK NDK_CPD DK NDD NDD_CPD DD Avicel Equilibrium moisture content vs time
  • 11. Calculated accessibility values (mol/kg) A = × 1000
  • 13. Equilibrium moisture contents vs water retention values
  • 14. Summary • We have applied a method to assess the reactivity of cellulose in pulp fibers - Based on DVS combined with D2O exchange - Direct assessment of the absolute amount of accessible hydroxyl groups • Correlation between accessibility and WRV for dried samples • Accessibility of ND pulps was relatively low -> Drying during measurements affects accessibility and/or samples don’t dry enough during the measurements -> EMC% correlates with WRV -> Further studies needed
  • 15. Acknowledgments A special thank you to Mr Ville Lovikka for preparing the critical point dried samples