Kamimura, A., & Yamamoto, S. (2007). An Efficient Method To
Depolymerize Polyamide Plastics: A New Use of Ionic Liquids, 9
(13), 2533–2535.
Kamimura, A., Yamamoto, S., & Yamada, K. (2011). Depolymerization of unsaturated polyesters and waste fiber-reinforced plastics by
using ionic liquids: the use of microwaves to accelerate the reaction
rate. 0195. Chemsuschem, 4, 644–649.
Kamimura, A., Shiramatsu, Y., & Kawamoto, T. (2019). Depolymerization of polyamide 6 in hydrophilic ionic liquids. Green Energy
and Environment, 4(2), 166–170.
Kaza, S., Yao, L., Bhada-Tata, P., & Woerden, F. (2018). What a
Waste 2.0: A Global Snapshot of Solid Waste Management to 2050.
World Bank Group. https://doi.org/10.1596/978-1-4648-1329-0.
Klein, R., Zech, O., Maurer, E., Kellermeier, M., & Kunz, W. (2011).
Oligoether Carboxylates: Task-specific room-temperature ionic
liquids. The Journal of Physical Chemistry B, 115, 8961–8969.
Meszaros, M. W. (1995). Advances in plastics recycling. In C. Rader
(Ed.), Plastics, Rubber, and Paper Recycling, ACS Symposium
Series; American Chemical Society: Washington, DC, pp. 170–182.
Mourshed, M., Masud, M. H., Rashid, F., & Joardder, M. U. H.
(2017) Towards the effective plastic waste management in
Bangladesh. Environmental Science and Pollution Research.
National Center for Biotechnology Information (2021) PubChem
Compound Summary for CID 11212667. Retrieved February 21,
2021 from https://pubchem.ncbi.nlm.nih.gov/compound/11212667.
Nelson, W. M. (2002). Are ionic liquids green solvents? ionic liquids as
greener solvents. In R. Rogers, et al. (Eds.), Ionic Liquids (pp. 30–
41). Washington, DC: ACS Symposium Series. American Chemical
Society.
Prado, R., Brandt, A., Erdocia, X., Hallet, J., Welton, T., & Labidi,
J. (2015). Lignin oxidation and depolymerization in ionic liquids.
Royal Society of Chemistry. https://doi.org/10.1039/c5gc01950h.
Ren, R. X. (2003). Green synthesis of ionic liquids for green
Chemistry. In R Rogers (Ed.) Ionic Liquids as Green Solvents,
ACS Symposium Series. American Chemical Society Washington,
DC, pp. 70–81.
Scott, M., Deuss, P. J., Vries, J. G., Prechtl, M. H. G., & Barta, K.
(2015). Catalysis Science & Technology lignin b -O-4 linkage in
multifunctional ionic liquid media. Catalysis Science & Technology. Royal Society of Chemistry. https://doi.org/10.1039/
C5CY01554E.
Singh, S. K., Banerjee, S., Vanka, K., & Dhepe, L. (2017).
Understanding interactions between lignin and ionic liquids with
experimental and theoretical studies during catalytic. Catalysis
Today. Elsevier B.V. https://doi.org/10.1016/j.cattod.2017.09.050.
Stark, K., Taccardi, N., Bçsmann, A., & Wasserscheid, P. (2010).
Oxidative depolymerization of lignin in ionic liquids. Chemsuschem, 3, 719–723.
Szalaty, T. J., Klapiszewski, Ł., & Moszy, D. (2018). Catalyst-free
activation of kraft lignin in air using hydrogen sulfate ionic liquids.
International Journal of Biological Macromolecules, 119, 431–437.
Tan, S. S. Y., & Macfarlane, D. R. (2009). Ionic liquids in biomass
processing. Topics in Current Chemistry. https://doi.org/10.1007/
128.
Thierry, A. M., Thierry, M., Majira, A., Pégot, B., Cézard, L.,
Bourdreux, F., et al. (2017). Imidazolium based Ionic liquids as
efficient reagents for lignin CO bond cleavage. Chemsuschem.
https://doi.org/10.1002/cssc.201701668.
Tolesa, L. D., Gupta, B. S., & Lee, M. (2017). The chemistry of
ammonium-based ionic liquids in depolymerization process of
lignin. Journal of Molecular Liquids. https://doi.org/10.1016/j.
molliq.2017.10.054.
Tolesa, L. D., Gupta, B. S., & Lee, M. (2019). Degradation of lignin
with aqueous ammonium-based ionic liquid solutions under milder
condition. New J: Chem. https://doi.org/10.1039/C8NJ05185B.
Wang, X., & Qian, E. W. (2020). Extraction and modification of lignin
from red pine using ionic liquid. Journal of the Japan Petroleum
Institute, 63(2), 102–105.
Wang, H., Tucker, M., & Ji, Y. (2013). Recent development in
chemical depolymerization of lignin. Journal of Applied Chemistry.
2013 Article ID 838645. https://doi.org/10.1155/2013/838645.
Wang, B., Qin, L., Mu, T., Xue, Z., & Gao, G. (2017). Are ionic liquids
chemically stable? Chemical Reviews, 117, 7113–7131.
Woidasky, J. (2018). Plastics recycling. Ullmann’s Encyclopedia of
Industrial Chemistry. https://doi.org/10.1002/14356007.a21.
Yang, Y., Zhang, C., & Zhang, Z. C. (2018). Advances in catalytic
transformations of carbohydrates and lignin in ionic liquids and
mechanistic studies. WIREs Energy Environ, 284, 1–13.
Zhang, B., li, C. Dai, T., Huber, G. W., Wang A., & Zhang, T. (2015).
Microwave-assisted fast conversion of lignin model compounds and
organosolv lignin over methyltrioxorhenium in ionic liquids.
Journal RSC. https://doi.org/10.1039/C5RA18738A.
336
E. Evans and S. Egharevba
Depolymerize Polyamide Plastics: A New Use of Ionic Liquids, 9
(13), 2533–2535.
Kamimura, A., Yamamoto, S., & Yamada, K. (2011). Depolymerization of unsaturated polyesters and waste fiber-reinforced plastics by
using ionic liquids: the use of microwaves to accelerate the reaction
rate. 0195. Chemsuschem, 4, 644–649.
Kamimura, A., Shiramatsu, Y., & Kawamoto, T. (2019). Depolymerization of polyamide 6 in hydrophilic ionic liquids. Green Energy
and Environment, 4(2), 166–170.
Kaza, S., Yao, L., Bhada-Tata, P., & Woerden, F. (2018). What a
Waste 2.0: A Global Snapshot of Solid Waste Management to 2050.
World Bank Group. https://doi.org/10.1596/978-1-4648-1329-0.
Klein, R., Zech, O., Maurer, E., Kellermeier, M., & Kunz, W. (2011).
Oligoether Carboxylates: Task-specific room-temperature ionic
liquids. The Journal of Physical Chemistry B, 115, 8961–8969.
Meszaros, M. W. (1995). Advances in plastics recycling. In C. Rader
(Ed.), Plastics, Rubber, and Paper Recycling, ACS Symposium
Series; American Chemical Society: Washington, DC, pp. 170–182.
Mourshed, M., Masud, M. H., Rashid, F., & Joardder, M. U. H.
(2017) Towards the effective plastic waste management in
Bangladesh. Environmental Science and Pollution Research.
National Center for Biotechnology Information (2021) PubChem
Compound Summary for CID 11212667. Retrieved February 21,
2021 from https://pubchem.ncbi.nlm.nih.gov/compound/11212667.
Nelson, W. M. (2002). Are ionic liquids green solvents? ionic liquids as
greener solvents. In R. Rogers, et al. (Eds.), Ionic Liquids (pp. 30–
41). Washington, DC: ACS Symposium Series. American Chemical
Society.
Prado, R., Brandt, A., Erdocia, X., Hallet, J., Welton, T., & Labidi,
J. (2015). Lignin oxidation and depolymerization in ionic liquids.
Royal Society of Chemistry. https://doi.org/10.1039/c5gc01950h.
Ren, R. X. (2003). Green synthesis of ionic liquids for green
Chemistry. In R Rogers (Ed.) Ionic Liquids as Green Solvents,
ACS Symposium Series. American Chemical Society Washington,
DC, pp. 70–81.
Scott, M., Deuss, P. J., Vries, J. G., Prechtl, M. H. G., & Barta, K.
(2015). Catalysis Science & Technology lignin b -O-4 linkage in
multifunctional ionic liquid media. Catalysis Science & Technology. Royal Society of Chemistry. https://doi.org/10.1039/
C5CY01554E.
Singh, S. K., Banerjee, S., Vanka, K., & Dhepe, L. (2017).
Understanding interactions between lignin and ionic liquids with
experimental and theoretical studies during catalytic. Catalysis
Today. Elsevier B.V. https://doi.org/10.1016/j.cattod.2017.09.050.
Stark, K., Taccardi, N., Bçsmann, A., & Wasserscheid, P. (2010).
Oxidative depolymerization of lignin in ionic liquids. Chemsuschem, 3, 719–723.
Szalaty, T. J., Klapiszewski, Ł., & Moszy, D. (2018). Catalyst-free
activation of kraft lignin in air using hydrogen sulfate ionic liquids.
International Journal of Biological Macromolecules, 119, 431–437.
Tan, S. S. Y., & Macfarlane, D. R. (2009). Ionic liquids in biomass
processing. Topics in Current Chemistry. https://doi.org/10.1007/
128.
Thierry, A. M., Thierry, M., Majira, A., Pégot, B., Cézard, L.,
Bourdreux, F., et al. (2017). Imidazolium based Ionic liquids as
efficient reagents for lignin CO bond cleavage. Chemsuschem.
https://doi.org/10.1002/cssc.201701668.
Tolesa, L. D., Gupta, B. S., & Lee, M. (2017). The chemistry of
ammonium-based ionic liquids in depolymerization process of
lignin. Journal of Molecular Liquids. https://doi.org/10.1016/j.
molliq.2017.10.054.
Tolesa, L. D., Gupta, B. S., & Lee, M. (2019). Degradation of lignin
with aqueous ammonium-based ionic liquid solutions under milder
condition. New J: Chem. https://doi.org/10.1039/C8NJ05185B.
Wang, X., & Qian, E. W. (2020). Extraction and modification of lignin
from red pine using ionic liquid. Journal of the Japan Petroleum
Institute, 63(2), 102–105.
Wang, H., Tucker, M., & Ji, Y. (2013). Recent development in
chemical depolymerization of lignin. Journal of Applied Chemistry.
2013 Article ID 838645. https://doi.org/10.1155/2013/838645.
Wang, B., Qin, L., Mu, T., Xue, Z., & Gao, G. (2017). Are ionic liquids
chemically stable? Chemical Reviews, 117, 7113–7131.
Woidasky, J. (2018). Plastics recycling. Ullmann’s Encyclopedia of
Industrial Chemistry. https://doi.org/10.1002/14356007.a21.
Yang, Y., Zhang, C., & Zhang, Z. C. (2018). Advances in catalytic
transformations of carbohydrates and lignin in ionic liquids and
mechanistic studies. WIREs Energy Environ, 284, 1–13.
Zhang, B., li, C. Dai, T., Huber, G. W., Wang A., & Zhang, T. (2015).
Microwave-assisted fast conversion of lignin model compounds and
organosolv lignin over methyltrioxorhenium in ionic liquids.
Journal RSC. https://doi.org/10.1039/C5RA18738A.
336
E. Evans and S. Egharevba
