Sample Sidebar Module

This is a sample module published to the sidebar_top position, using the -sidebar module class suffix. There is also a sidebar_bottom position below the menu.

Sample Sidebar Module

This is a sample module published to the sidebar_bottom position, using the -sidebar module class suffix. There is also a sidebar_top position below the search.
Existing Literature
Acy, C. N. (2015). Tolerance of the invasive New Zealand mud snail to various decontamination procedures. (Honors Project). Lawrence University.

Alonso, A., & Camargo, J. A. (2003). Short-term toxicity of ammonia, nitrite, and nitrate to the aquatic snail Potamopyrgus antipodarum (Hydrobiidae, Mollusca). Bull Environ Contam Toxicol. 70(5), 1006-1012.

Alonso, A., & Camargo, J. A. (2004). Sub-lethal responses of the aquatic snail Potamopyrgus antipodarum (Hydrobiidae, Mollusca) to unionized ammonia: A tolerant invading species. Fresenius Environmental Bulletin. 13(7), 607-615.

Alonso, A., & Camargo, J. A. (2009). Long-term effects of ammonia on the behavioral activity of the aquatic snail Potamopyrgus antipodarum (Hydrobiidae, Mollusca). Arch Environ Contam Toxicol. 56(4), 796-802.

Barenberg, A., & Moffitt, C. M. (2018). Toxicity of aqueous alkaline solutions to New Zealand mudsnails, Asian clams, and quagga mussels. Journal of Fish and Wildlife Management. 9(1), 14-24.

Cheng, Y. W., & LeClair, L. (2011). A quantitative evaluation of the effect of freezing temperatures on the survival of New Zealand mudsnails (Potamopyrgus antipodarum Gray, 1843), in Olympia Washington's Capitol Lake. Aquatic Invasions. 6(1), 47-54.

Duft et al. (2003). Toxicity of triphenyltin and tributyltin to the freshwater mudsnail Potamopyrgus antipodarum in a new sediment biotest. Environ Toxicol Chem. 22(1), 145-152.

Grant, A., & Briggs, A. D. (1998). Toxicity of ivermectin to estuarine and marine invertebrates. Marine Pollution Bulletin. 36(7), 540, 541.

Hosea, R.C. & Finlayson, B. (2005). Controlling the spread of New Zealand mud snails on wading gear. 

Hoyer, S. A., & Myrick, C. A. (2012). Can copper-based substrates be used to protect hatcheries from invasion by the New Zealand mudsnail? North American Journal of Aquaculture. 74(4), 575-583. 

Jensen et al. (2001). Variation in cadmium uptake, feeding rate, and life-history effects in the gastropod Potamopyrgus antipodarum: Linking toxicant effects on individuals to the population level. Environ Toxicol Chem. 20(11), 2503-2513. 

LeClair, L. L. (2011). A review of salinity tolerances for the New Zealand mudsnail (Potamopyrgus antipodarum, Gray 1843) and the effect of a controlled saltwater backflush on their survival in an impounded freshwater lake. Journal of Shellfish Research. 30(1), 905-914. 

Maret et al. (2008). Long-term water quality and biological responses to multiple best management practices in Rock Creek, Idaho. Journal of the American Water Resources Association. 44(5), 1248-1269. 

McMillin, S., & Trumbo, J. D. (2009). Field assessment of Bayluscide treatments for the control of New Zealand mudsnail Potamopyrgus antipodarum in a concrete-lined canal. California Fish and Game. 95(4), 147-152. 

Nielson et al. (2012). Toxicity of elevated partial pressures of carbon dioxide to invasive New Zealand mudsnails. Environmental Toxicology and Chemistry. 31(8), 1838-42. 

Oplinger, R. W., & Wagner, E. J. (2011). Effect of potassium permanganate treatments on New Zealand mud snail behavior and survival and rainbow trout growth and condition. North American Journal of Aquaculture. 72(3), 207-212. 

Oplinger, R. W., & Wagner, E. J. (2011) Tests of the ability of five disinfectants to kill New Zealand Mud Snails. Journal of Applied Aquaculture. 32(2), 187-198.

Oplinger, R. W., & Wagner, E. J. (2011). Toxicity of common aquaculture disinfectants to New Zealand Mud Snails and mud snail toxicants to rainbow trout eggs. North American Journal of Aquaculture. 71(3), 229-237. 

Oplinger, R. W., & Wagner, E. J. (2015). Effects of sodium chloride and long-term, low-concentration exposures to hydrogen peroxide on New Zealand mud snails. North American Journal of Aquaculture. 77(1), 31-36. 

Oplinger et al. (2011). Effect of sodium chloride, tricaine methanesulfonate, and light on New Zealand mud snail behavior, survival of snails defecated from rainbow trout, and effects of Epsom salt on snail elimination rate. North American Journal of Aquaculture. 71(2), 157-164. 

Ota et al. (2018). The effect of newt toxin on an invasive snail. Hydrobiologia. 817(1), 341-348. 

Proctor et al. (2007). National management and control plan for the New Zealand mudsnail. NZ Mudsnail Management Plan. 

Richards et al. (2004). Simple Control Method to Limit Spread of New Zealand mudsnail, Potamopyrgus antipodarum. North American Journal of Fisheries Management. 24(1), 114-117. 

Schisler et al. (2008). Application of household disinfectants to control New Zealand mudsnails. North American Journal of Fisheries Management. 28(4), 1172-1176. 

State of Michigan. (2018). Status and strategy for New Zealand mud snail management. 

Stockton, K., & Moffitt, C. M. (2013). Disinfection of three wading boot surfaces infested with New Zealand mudsnails. North American Journal of Fisheries Management. 33(3), 529-538. 

Stockton, K., & Moffitt, C. M. (2017). Safety and efficacy of Virkon (R) aquatic as a control tool for invasive molluscs in aquaculture. Aquaculture. 480(1), 71-76. 

Stout et al. (2016). Efficacy of commercially available quaternary ammonium compounds for controlling New Zealand mudsnails Potamopyrgus antipodarum. North American Journal of Fisheries Management. 36(1), 277-284. 

Urabe, M. (2007). The present distribution and issues regarding the control of the exotic snail Potamopyrgus antipodarum in Japan. Japanese Journal of Limnology (Rikusuigaku Zasshi). 68(3), 491-496. 

Vallejo-Freire et al. (1954). Quaternary ammonium compounds as molluscacides. Science (Washington)119(3093), 470-472. 

Wisconsin Department of Natural Resources. (2018). Boat, gear, and equipment decontamination and disinfection manual code 9183.1.