9 Natural Fiber Welding
225
4. Phillips DM, Drummy LF, Conrady DG, Fox DM, Naik RR, Stone MO, Trulove PC, De Long
HC, Mantz RA (2004) Dissolution and regeneration of Bombyx mori silk fibroin using ionic
liquids. J Am Chem Soc 126:14350–14351. https://doi.org/10.1021/ja046079f
5. Haverhals LM, Sulpizio HM, Fayos ZA, Trulove MA, Reichert WM, Foley MP, De Long HC,
Trulove PC (2012) Process variables that control natural fiber welding: time, temperature, and
amount of ionic liquid. Cellulose 19:13–22. https://doi.org/10.1007/s10570-011-9605-0
6. Haverhals LM, Nevin LM, Foley MP, Brown EK, De Long HC, Trulove PC (2012) Fluorescence monitoring of ionic liquid-facilitated biopolymer mobilization and reorganization. Chem
Commun 48:6417–6419. https://doi.org/10.1039/C2CC31507F
7. Haverhals LM, Foley MP, Brown EK, Fox DM, De Long HC, Trulove PC (2012) Natural
fiber welding: ionic liquid facilitated biopolymer mobilization and reorganization. In: Visser
A, Bridges N, Rogers R (eds) Ionic liquids: science and applications, ACS Symposium Series
1117, American Chemical Society. Washington, DC, Chap. 6, pp 145–166. Alternatively: ACS
Symp Ser 2012, 1117:145–166. https://doi.org/10.1021/bk-2012-1117.ch006
8. Haverhals LM, Amstutz AK, Choi J, Tang X, Molter M, Null SJ (2018) Methods, processes,
and apparatuses for producing dyed and welded substrates. U.S. patent no. 10011931. Awarded
3 July 2018
9. Ellen MacArthur Foundation (2017) The new plastics economy: rethinking the future of plastics
and catalyzing action, pp 1–66
10. Ellen MacArthur Foundation (2017) A new textiles economy: redesigning fashion’s future, pp
1–150
11. Browne MA, Crump P, Niven SJ, Teuten E, Tonkin A, Galloway T, Thompson R (2011)
Accumulation of microplastic on shorelines worldwide: sources and sinks. Environ Sci Technol
45(21):9175–9179. https://doi.org/10.1021/es201811s
12. Kohoutek J, Babica P, Bláha L, Maršálek B (2008) A novel approach for monitoring of
cyanobacterial toxins: development and evaluation of the passive sampler for microcystins.
Anal Bioanal Chem 390(4):1167–1172. https://doi.org/10.1007/s00216-007-1785-y
13. Cole M, Lindeque P, Fileman E, Halsband C, Goodhead R, Moger J, Galloway TS (2013)
Microplastic ingestion by zooplankton. Environ Sci Technol 47(12):6646–6655. https://doi.
org/10.1021/es400663f
14. McCormick A, Hoellein TJ, Mason SA, Schluep J, Kelly JJ (2014) Microplastic is an abundant
and distinct microbial habitat in an urban river. Environ Sci Technol 48(20):11863–11871.
https://doi.org/10.1021/es503610r
15. Rochman CM, Parnis JM, Browne MA, Serrato S, Reiner EJ, Robson M, Young T, Diamond
ML, Teh SJ (2017) Direct and indirect effects of different types of microplastics on freshwater prey (Corbicula fluminea) and their predator (Acipenser transmontanus). PLoS ONE
12(11):e0187664. https://doi.org/10.1371/journal.pone.0187664
16. Jeong C-B, Won E-J, Kang H-M, Lee M-C, Hwang D-S, Hwang U-K, Zhou B, Souissi S, Lee
S-J, Lee J-S (2016) Microplastic size-dependent toxicity, oxidative stress induction, and p-JNK
and p-p38 activation in the monogonont rotifer (Brachionus koreanus). Environ Sci Technol
50(16):8849–8857. https://doi.org/10.1021/acs.est.6b01441
17. Smith M, Love DC, Rochman CM, Neff RA (2018) Microplastics in seafood and the implications for human health. Curr Environ Health Rep 5(3):375–386. https://doi.org/10.1007/
s40572-018-0206-z
18. Yang D, Shi H, Li L, Li J, Jabeen K, Kolandhasamy P (2015) Microplastic pollution in table
salts from China. Environ Sci Technol 49(22):13622–13627. https://doi.org/10.1021/acs.est.
5b03163
19. https://orbmedia.org/stories/Invisibles_plastics/. Site visited 10 Jan 2019
20. US Department of Agriculture (2018) Cotton: world markets and trade, 11 Dec 2018 report.
https://apps.fas.usda.gov/psdonline/circulars/cotton.pdf. Site visited 10 Jan 2019
21. US Department of Agriculture (2019) World agricultural production, 11 Dec 2018 report.
https://apps.fas.usda.gov/psdonline/circulars/production.pdf. Site visited 10 Jan 2019
22. Wedegaertner T, Rathore K (2015) Elimination of gossypol in cottonseed will improve its
utilization. Procedia Environ Sci 29:124–125. https://doi.org/10.1016/j.proenv.2015.07.212
225
4. Phillips DM, Drummy LF, Conrady DG, Fox DM, Naik RR, Stone MO, Trulove PC, De Long
HC, Mantz RA (2004) Dissolution and regeneration of Bombyx mori silk fibroin using ionic
liquids. J Am Chem Soc 126:14350–14351. https://doi.org/10.1021/ja046079f
5. Haverhals LM, Sulpizio HM, Fayos ZA, Trulove MA, Reichert WM, Foley MP, De Long HC,
Trulove PC (2012) Process variables that control natural fiber welding: time, temperature, and
amount of ionic liquid. Cellulose 19:13–22. https://doi.org/10.1007/s10570-011-9605-0
6. Haverhals LM, Nevin LM, Foley MP, Brown EK, De Long HC, Trulove PC (2012) Fluorescence monitoring of ionic liquid-facilitated biopolymer mobilization and reorganization. Chem
Commun 48:6417–6419. https://doi.org/10.1039/C2CC31507F
7. Haverhals LM, Foley MP, Brown EK, Fox DM, De Long HC, Trulove PC (2012) Natural
fiber welding: ionic liquid facilitated biopolymer mobilization and reorganization. In: Visser
A, Bridges N, Rogers R (eds) Ionic liquids: science and applications, ACS Symposium Series
1117, American Chemical Society. Washington, DC, Chap. 6, pp 145–166. Alternatively: ACS
Symp Ser 2012, 1117:145–166. https://doi.org/10.1021/bk-2012-1117.ch006
8. Haverhals LM, Amstutz AK, Choi J, Tang X, Molter M, Null SJ (2018) Methods, processes,
and apparatuses for producing dyed and welded substrates. U.S. patent no. 10011931. Awarded
3 July 2018
9. Ellen MacArthur Foundation (2017) The new plastics economy: rethinking the future of plastics
and catalyzing action, pp 1–66
10. Ellen MacArthur Foundation (2017) A new textiles economy: redesigning fashion’s future, pp
1–150
11. Browne MA, Crump P, Niven SJ, Teuten E, Tonkin A, Galloway T, Thompson R (2011)
Accumulation of microplastic on shorelines worldwide: sources and sinks. Environ Sci Technol
45(21):9175–9179. https://doi.org/10.1021/es201811s
12. Kohoutek J, Babica P, Bláha L, Maršálek B (2008) A novel approach for monitoring of
cyanobacterial toxins: development and evaluation of the passive sampler for microcystins.
Anal Bioanal Chem 390(4):1167–1172. https://doi.org/10.1007/s00216-007-1785-y
13. Cole M, Lindeque P, Fileman E, Halsband C, Goodhead R, Moger J, Galloway TS (2013)
Microplastic ingestion by zooplankton. Environ Sci Technol 47(12):6646–6655. https://doi.
org/10.1021/es400663f
14. McCormick A, Hoellein TJ, Mason SA, Schluep J, Kelly JJ (2014) Microplastic is an abundant
and distinct microbial habitat in an urban river. Environ Sci Technol 48(20):11863–11871.
https://doi.org/10.1021/es503610r
15. Rochman CM, Parnis JM, Browne MA, Serrato S, Reiner EJ, Robson M, Young T, Diamond
ML, Teh SJ (2017) Direct and indirect effects of different types of microplastics on freshwater prey (Corbicula fluminea) and their predator (Acipenser transmontanus). PLoS ONE
12(11):e0187664. https://doi.org/10.1371/journal.pone.0187664
16. Jeong C-B, Won E-J, Kang H-M, Lee M-C, Hwang D-S, Hwang U-K, Zhou B, Souissi S, Lee
S-J, Lee J-S (2016) Microplastic size-dependent toxicity, oxidative stress induction, and p-JNK
and p-p38 activation in the monogonont rotifer (Brachionus koreanus). Environ Sci Technol
50(16):8849–8857. https://doi.org/10.1021/acs.est.6b01441
17. Smith M, Love DC, Rochman CM, Neff RA (2018) Microplastics in seafood and the implications for human health. Curr Environ Health Rep 5(3):375–386. https://doi.org/10.1007/
s40572-018-0206-z
18. Yang D, Shi H, Li L, Li J, Jabeen K, Kolandhasamy P (2015) Microplastic pollution in table
salts from China. Environ Sci Technol 49(22):13622–13627. https://doi.org/10.1021/acs.est.
5b03163
19. https://orbmedia.org/stories/Invisibles_plastics/. Site visited 10 Jan 2019
20. US Department of Agriculture (2018) Cotton: world markets and trade, 11 Dec 2018 report.
https://apps.fas.usda.gov/psdonline/circulars/cotton.pdf. Site visited 10 Jan 2019
21. US Department of Agriculture (2019) World agricultural production, 11 Dec 2018 report.
https://apps.fas.usda.gov/psdonline/circulars/production.pdf. Site visited 10 Jan 2019
22. Wedegaertner T, Rathore K (2015) Elimination of gossypol in cottonseed will improve its
utilization. Procedia Environ Sci 29:124–125. https://doi.org/10.1016/j.proenv.2015.07.212
