Carrasco, A., Astorga, M., Cisterna, A., Arias, A., Espinoza, V., & Uriarte, I. (2014).
Pre-feasibility study for the installation of a Chilean mussel Mytilus chilensis (Hupé, 1854)
seed hatchery in the lakes region, Chiles. Fisheries and Aquaculture Journal, 5, 102.
CDP. (2013). Use of internal carbon price by companies as incentive and strategic planning tool: A
review of findings from CDP 2013 disclosure. CDP North America. New York. Retrieved
October 23, 2015, from https://www.cdp.net/CDPResults/companies-carbon-pricing-2013.pdf
CEFAS. (2014). Centre for environment, fisheries and aquaculture science. Project partner meeting
for the EFF project: Shellfish aquaculture in welsh offshore wind farms. Fishmongers’ Hall,
London, May 22, 2013. Access via Aquafishsolutions, Accessed May 18, 2016 at www.
aquafishsolutions.com
Chambers, M. D. (2013). Integrated multi-trophic aquaculture of steelhead, Blue Mussels and
Sugar Kelp, Ph.D. dissertation. Department of Biological Sciences, University of New
Hampshire, Durham, NH.
Chen, T. T., Lin, C. M., Chen, M. J., Lo, J. H., Chiou, P. P., Gong, H. Y., et al. (2014). Principles
and application of transgenic technology in marine organisms. In S. K. Kim (Ed.), Handbook
of marine biotechnology. Berlin: Springer.
Chopin, T. (2006). Integrated multi-trophic aquaculture. What it is and why you should care …
and don’t confuse it with polyculture. Northern Aquaculture, 12, 4.
Chopin, T. (2014). Seaweeds: Top mariculture crop, ecosystem service provider. Global
Aquaculture Advocate, 17, 54–56.
Chopin, T. (2015). Marine aquaculture in Canada: well-established monocultures of finfish and
shellfish and an emerging Integrated Multi-Trophic Aquaculture (IMTA) approach including
seaweeds, other invertebrates, and microbial com-munities. Fisheries, 40, 28–31.
Chopin, T., Buschmann, A. H., Halling, C., Troell, M., Kautsky, N., Neori, A., et al. (2001).
Integrating seaweeds into marine aquaculture systems: A key toward sustainability. Journal of
Phycology, 37, 975–986.
Chopin, T., Cooper, A., Reid, G., Cross, S., & Moore, C. (2012). Open-water integrated
multi-trophic aquaculture: Environmental biomitigation and economic diversification of fed
aquaculture by extractive aquaculture. Reviews in Aquaculture, 4, 209–220.
Chopin, T., Neori, A., Buschmann, A., Pang, S., & Sawhney, M. (2011). Diversification of the
aquaculture sector. Seaweed cultivation, integrated multi-trophic aquaculture, integrated
sequential biorefineries. Global Aquaculture Advocate, 14, 58–60.
Chopin, T., Robinson, S., Sawhney, M., Bastarache, S., Belyea, E., Shea, R., et al. (2004). The
AquaNet integrated multi-trophic aquaculture project: Rationale of the project and development of kelp cultivation as the inorganic extractive component of the system.
Bulletin-Aquaculture Association of Canada, 104, 11–18.
Chopin, T., Robinson, S. M. C., Troell, M., Neori, A., Buschmann, A. H., & Fang, J. (2008).
Multitrophic integration for sustainable marine aquaculture. In S. E. Jørgensen & B. D. Fath
(Eds.), Ecological engineering. Vol. 3 of Encyclopedia of Ecology (Vol. 5, pp. 2463–2475).
Oxford: Elsevier
Chopin, T., Robinson, S., Reid, G., & Ridle, N. (2013). Prospects for Integrated Multi-Trophic
Aquaculture (IMTA) in the open ocean. Bulletin of the Aquaculture Association of Canada,111
(2), 28–35.
Chopin, T., Troell, M., Reid, G. K., Knowler, D., Robinson, S. M. C., Neori, A., et al. (2010).
Integrated multi-trophic aquaculture (IMTA)—A responsible practice providing diversified
seafood products while rendering biomitigating services through its extractive components.
In N. Franz & C. C. Schmidt (Eds.), Proceedings of the Organisation for economic
co-operation and development (OECD) workshop “Advancing the Aquaculture Agenda:
Policies to Ensure a Sustainable Aquaculture Sector”, Paris, France, 15–16 April 2010: 195–
217 (p. 426). Paris: Organisation for Economic Co-operation and Development.
Chopin, T., Yarish, C., Wilkes, R., Belyea, E., Lu, S., & Mathieson, A. (1999). Developing
Porphyra/salmon integrated aquaculture for bioremediation and diversification of the
aquaculture industry. Journal of Applied Phycology, 11, 463–472.
2 Offshore and Multi-Use Aquaculture with Extractive Species…
61
Pre-feasibility study for the installation of a Chilean mussel Mytilus chilensis (Hupé, 1854)
seed hatchery in the lakes region, Chiles. Fisheries and Aquaculture Journal, 5, 102.
CDP. (2013). Use of internal carbon price by companies as incentive and strategic planning tool: A
review of findings from CDP 2013 disclosure. CDP North America. New York. Retrieved
October 23, 2015, from https://www.cdp.net/CDPResults/companies-carbon-pricing-2013.pdf
CEFAS. (2014). Centre for environment, fisheries and aquaculture science. Project partner meeting
for the EFF project: Shellfish aquaculture in welsh offshore wind farms. Fishmongers’ Hall,
London, May 22, 2013. Access via Aquafishsolutions, Accessed May 18, 2016 at www.
aquafishsolutions.com
Chambers, M. D. (2013). Integrated multi-trophic aquaculture of steelhead, Blue Mussels and
Sugar Kelp, Ph.D. dissertation. Department of Biological Sciences, University of New
Hampshire, Durham, NH.
Chen, T. T., Lin, C. M., Chen, M. J., Lo, J. H., Chiou, P. P., Gong, H. Y., et al. (2014). Principles
and application of transgenic technology in marine organisms. In S. K. Kim (Ed.), Handbook
of marine biotechnology. Berlin: Springer.
Chopin, T. (2006). Integrated multi-trophic aquaculture. What it is and why you should care …
and don’t confuse it with polyculture. Northern Aquaculture, 12, 4.
Chopin, T. (2014). Seaweeds: Top mariculture crop, ecosystem service provider. Global
Aquaculture Advocate, 17, 54–56.
Chopin, T. (2015). Marine aquaculture in Canada: well-established monocultures of finfish and
shellfish and an emerging Integrated Multi-Trophic Aquaculture (IMTA) approach including
seaweeds, other invertebrates, and microbial com-munities. Fisheries, 40, 28–31.
Chopin, T., Buschmann, A. H., Halling, C., Troell, M., Kautsky, N., Neori, A., et al. (2001).
Integrating seaweeds into marine aquaculture systems: A key toward sustainability. Journal of
Phycology, 37, 975–986.
Chopin, T., Cooper, A., Reid, G., Cross, S., & Moore, C. (2012). Open-water integrated
multi-trophic aquaculture: Environmental biomitigation and economic diversification of fed
aquaculture by extractive aquaculture. Reviews in Aquaculture, 4, 209–220.
Chopin, T., Neori, A., Buschmann, A., Pang, S., & Sawhney, M. (2011). Diversification of the
aquaculture sector. Seaweed cultivation, integrated multi-trophic aquaculture, integrated
sequential biorefineries. Global Aquaculture Advocate, 14, 58–60.
Chopin, T., Robinson, S., Sawhney, M., Bastarache, S., Belyea, E., Shea, R., et al. (2004). The
AquaNet integrated multi-trophic aquaculture project: Rationale of the project and development of kelp cultivation as the inorganic extractive component of the system.
Bulletin-Aquaculture Association of Canada, 104, 11–18.
Chopin, T., Robinson, S. M. C., Troell, M., Neori, A., Buschmann, A. H., & Fang, J. (2008).
Multitrophic integration for sustainable marine aquaculture. In S. E. Jørgensen & B. D. Fath
(Eds.), Ecological engineering. Vol. 3 of Encyclopedia of Ecology (Vol. 5, pp. 2463–2475).
Oxford: Elsevier
Chopin, T., Robinson, S., Reid, G., & Ridle, N. (2013). Prospects for Integrated Multi-Trophic
Aquaculture (IMTA) in the open ocean. Bulletin of the Aquaculture Association of Canada,111
(2), 28–35.
Chopin, T., Troell, M., Reid, G. K., Knowler, D., Robinson, S. M. C., Neori, A., et al. (2010).
Integrated multi-trophic aquaculture (IMTA)—A responsible practice providing diversified
seafood products while rendering biomitigating services through its extractive components.
In N. Franz & C. C. Schmidt (Eds.), Proceedings of the Organisation for economic
co-operation and development (OECD) workshop “Advancing the Aquaculture Agenda:
Policies to Ensure a Sustainable Aquaculture Sector”, Paris, France, 15–16 April 2010: 195–
217 (p. 426). Paris: Organisation for Economic Co-operation and Development.
Chopin, T., Yarish, C., Wilkes, R., Belyea, E., Lu, S., & Mathieson, A. (1999). Developing
Porphyra/salmon integrated aquaculture for bioremediation and diversification of the
aquaculture industry. Journal of Applied Phycology, 11, 463–472.
2 Offshore and Multi-Use Aquaculture with Extractive Species…
61
