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1. GUPTA, A., BAJAJ, P., & PALIWAL, D. (1998). Journal of Applied Polymer Science, 70(2703). Retrieved September 26, 2014.
2. Sreekumar, T., & Sen, K. (2001). Effect of Reaction medium on Radical Polymerization of Acrylonitrile with Vinyl acids. Poly sci., 79(1640). Retrieved September 26, 2014.
3. (n.d.). In http://www.pslc.ws/mactest/pan.htm. Retrieved September 26, 2014
4. Serkov, A., & Radishevskii, M. (2008). Status and Prospects For Production Of Carbon Fibres Based on Polyacrylonitrile.Fibre Chemistry, 40(1), 24-31. Retrieved September 26, 2014.

5. Brazdil, J. F. (2005). Acrylonitrile. In Ullmann's Encyclopedia of Industrial Chemistry. Weinheim, Germany: Weily-VCH. Retrieved September 26, 2014
6. (n.d.). In http://www.k-online.de/cipp/md_k/custom/pub/show,lang,1/oid,18016/exh_id,1717/~/Web-ProdDatasheet/prod_datasheet. . Retrieved September 26, 2014
7. (n.d.). In drlchem.com/CHEM112/Lecture%202b%20Intermolecular%20Forces.pdf. Retrieved September 26, 2014.
8. Perera, K. S., Dissanayake, M., Skaarup, S., & West, K. (2008). Application of polyacrylonitrile-based polymer electrolytes in rechargeable lithium batteries. Journal of Solid State Electrochemistry, 12(7-8), 873-877. Retrieved September 27, 2014, from http://orbit.dtu.dk/en/publications/application-of-polyacrylonitrilebased-polymer-electrolytes-in-rechargeable-lithium-batteries(6875dc30-4fc8-4b57-af30-411ec792b3ca).html
9. Papkov, D., Zou, Y., Andalib, M. N., Goponenko, A., Cheng, S. Z., & Denzis, Y. A. (2013). Simultaneously Strong and Tough Ultrafine Continuous Nanofibers. ACS Nano, 7(4), 3324-3331. Retrieved September 27, 2014, from http://pubs.acs.org/doi/abs/10.1021/nn400028p
10. Discovery yields supertough, strong nanofibers (2013, April 23). In KurzweilAI. Retrieved September 27, 2014, from http://www.kurzweilai.net/discovery-yields-supertough-strong-nanofibers?utm_source=KurzweilAI+Daily+Newsletter&utm_campaign=4485e1888a-UA-946742-1&utm_medium=email
11. Aykut, Y., Pourdeyhimi,

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