TY - JOUR
T1 - Mechanism of Chrome-free Tanning with Tetra-hydroxymethyl Phosphonium Chloride* * Supported by the National Basic Research Program (2007CB616909), Startup Foundation of Applied Chemistry of the Key Discipline of Zhejiang University of Technology and Zhejiang Provincial Science and Technology Plan (2006C21107).
AU - SHAO, Shuangxi
AU - SHI, Kaiqi
AU - LI, Ya
AU - JIANG, Lan
AU - MA, Chun'an
N1 - Funding Information:
Received 2007-09-22, accepted 2008-01-23. * Supported by the National Basic Research Program (2007CB616909), Startup Foundation of Applied Chemistry of the Key Discipline of Zhejiang University of Technology and Zhejiang Provincial Science and Technology Plan (2006C21107). ** To whom correspondence should be addressed. E-mail: nbssx@126.com
PY - 2008/6
Y1 - 2008/6
N2 - Tetra-hydroxymethyl phosphonium chloride (THPC) has been considered as an important chrome-free tanning agent. To understand the THPC tanning mechanism, the structure, charge distribution, activity and tanning ability of each phosphorous compound in THPC tanning system were studied, by 31P NMR, FT-IR spectroscopy, differential scanning calorimetry (DSC) and computational chemistry method, etc. When pH raised to 6.0, the decomposition of THPC would take place, which results in a production of free formaldehyde, tri-hydroxymethyl phosphonium (TrHP) and tri-hydroxymethyl phosphine oxide (TrHPO). At pH 9.0, THPC will be converted completely to TrHP and most TrHP is further oxidized into TrHPO. It is possible that, in reaction of phosphorous compounds and collagens, both P-C and C-O bonds would break simultaneously or individually. From molecular charge distribution and bond polar properties, it is deduced that, if P-C bonds break, the activity is in order of TrHPO>THPC>TrHP, whereas if C-O bonds break, the order is TrHP>THPC>TrHPO. It is more possible that P-C bonds will break in reaction with collagen, and TrHPO may be more active in the THPC tanning system. The results of tanning and DSC also prove the above conclusion. Furthermore, the fact that the shrinkage temperature of THPC tanned leather was below 70°C when basified to pH 5.0 or lower suggests that the hydroxymethyl groups of THPC and TrHP are less possible to combine directly with amino groups of collagen.
AB - Tetra-hydroxymethyl phosphonium chloride (THPC) has been considered as an important chrome-free tanning agent. To understand the THPC tanning mechanism, the structure, charge distribution, activity and tanning ability of each phosphorous compound in THPC tanning system were studied, by 31P NMR, FT-IR spectroscopy, differential scanning calorimetry (DSC) and computational chemistry method, etc. When pH raised to 6.0, the decomposition of THPC would take place, which results in a production of free formaldehyde, tri-hydroxymethyl phosphonium (TrHP) and tri-hydroxymethyl phosphine oxide (TrHPO). At pH 9.0, THPC will be converted completely to TrHP and most TrHP is further oxidized into TrHPO. It is possible that, in reaction of phosphorous compounds and collagens, both P-C and C-O bonds would break simultaneously or individually. From molecular charge distribution and bond polar properties, it is deduced that, if P-C bonds break, the activity is in order of TrHPO>THPC>TrHP, whereas if C-O bonds break, the order is TrHP>THPC>TrHPO. It is more possible that P-C bonds will break in reaction with collagen, and TrHPO may be more active in the THPC tanning system. The results of tanning and DSC also prove the above conclusion. Furthermore, the fact that the shrinkage temperature of THPC tanned leather was below 70°C when basified to pH 5.0 or lower suggests that the hydroxymethyl groups of THPC and TrHP are less possible to combine directly with amino groups of collagen.
KW - charge distribution
KW - chrome-free tannage
KW - green chemicals
KW - tanning mechanism
KW - tetra-hydroxymethyl phosphonium chloride
UR - http://www.scopus.com/inward/record.url?scp=45949088645&partnerID=8YFLogxK
U2 - 10.1016/S1004-9541(08)60103-2
DO - 10.1016/S1004-9541(08)60103-2
M3 - Article
AN - SCOPUS:45949088645
SN - 1004-9541
VL - 16
SP - 446
EP - 450
JO - Chinese Journal of Chemical Engineering
JF - Chinese Journal of Chemical Engineering
IS - 3
ER -