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Evol., 18, 182, 10.1016\u002FS0169-5347(03)00011-9\nBeringer, 2011, Bioenergy production potential of global biomass plantations under environmental and agricultural constraints, GCB Bioenergy, 3, 299, 10.1111\u002Fj.1757-1707.2010.01088.x\nBoisier, 2014, Historical land-use-induced evapotranspiration changes estimated from present-day observations and reconstructed land-cover maps, Hydrol. Earth Syst. Sci., 18, 3571, 10.5194\u002Fhess-18-3571-2014\nBondeau, 2007, Modelling the role of agriculture for the 20th century global terrestrial carbon balance, Glob. Change Biol., 13, 679, 10.1111\u002Fj.1365-2486.2006.01305.x\nBrook, 2013, Does the terrestrial biosphere have planetary tipping points?, Trends Ecol. Evol., 28, 396, 10.1016\u002Fj.tree.2013.01.016\nBruinsma, 2009\nCardinale, 2012, Biodiversity loss and its impact on humanity, Nature, 486, 59, 10.1038\u002Fnature11148\nCaro, 2014, CH4 and N2O emissions embodied in international trade of meat, Environ. Res. 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Land Use Sci., 2, 191, 10.1080\u002F17474230701622981\nErb, 2016, Exploring the biophysical option space for feeding the world without deforestation, Nat. Commun., 7, 11382, 10.1038\u002Fncomms11382\nEstes, 2016, Reconciling agriculture, carbon and biodiversity in a savannah transformation frontier, Philos. Trans. R. Soc. B, 371, 20150316, 10.1098\u002Frstb.2015.0316\nFader, 2010, Virtual water content of temperate cereals and maize: present and potential future patterns, J. Hydrol., 384, 218, 10.1016\u002Fj.jhydrol.2009.12.011\nFAOSTAT, 2005\nFischer, 2012\nGerten, 2004, Terrestrial vegetation and water balance—hydrological evaluation of a dynamic global vegetation model, J. Hydrol., 286, 249, 10.1016\u002Fj.jhydrol.2003.09.029\nGerten, 2013, Towards a revised planetary boundary for consumptive freshwater use: role of environmental flow requirements, Curr. Opin. Environ. 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Cycles, 22, GB1003, 10.1029\u002F2007GB002952\nRockström, 2007, Assessing the water challenge of a new green revolution in developing countries, Proc. Natl. Acad. Sci. U. S. A., 104, 6253, 10.1073\u002Fpnas.0605739104\nRockström, 2009, A safe operating space for humanity, Nature, 461, 472, 10.1038\u002F461472a\nRockström, 2014, Food production: a mega water challenge\nRogelj, 2016, Differences between carbon budget estimates unravelled, Nat. Clim. Change, 6, 245, 10.1038\u002Fnclimate2868\nRost, 2008, Agricultural green and blue water consumption and its influence on the global water system, Water Resour. Res., 44, W09405, 10.1029\u002F2007WR006331\nSayer, 2009, Reconciling conservation and development: are landscapes the answer?, Biotropica, 41, 649, 10.1111\u002Fj.1744-7429.2009.00575.x\nScholes, 2005, A biodiversity intactness index, Nature, 434, 45, 10.1038\u002Fnature03289\nSitch, 2003, Evaluation of ecosystem dynamics, plant geography and terrestrial carbon cycling in the LPJ dynamic global vegetation model, Glob. Change Biol., 9, 161, 10.1046\u002Fj.1365-2486.2003.00569.x\nSmakhtin, 2004\nSteffen, 2015, Planetary boundaries: guiding human development on a changing planet, Science, 347, 1259855, 10.1126\u002Fscience.1259855\nTilman, 2002, Agricultural sustainability and intensive production practices, Nature, 418, 671, 10.1038\u002Fnature01014\nTscharntke, 2012, Global food security, biodiversity conservation and the future of agricultural intensification, Biol. Conserv., 151, 53, 10.1016\u002Fj.biocon.2012.01.068\nUN General Assembly, 2015\nUNFCCC, 2016\nWaha, 2012, Climate-driven simulation of global crop sowing dates, Glob. Ecol. Biogeogr., 21, 247, 10.1111\u002Fj.1466-8238.2011.00678.x\nWhite, 2012, Agriculture and the generation problem: rural youth, employment and the future of farming, IDS Bull., 43, 9, 10.1111\u002Fj.1759-5436.2012.00375.x\nWirsenius, 2010, How much land is needed for global food production under scenarios of dietary changes and livestock productivity increases in 2030?, Agric. Syst., 103, 621, 10.1016\u002Fj.agsy.2010.07.005\nWyborn, 2013, Collaboration and nested environmental governance: scale dependency, scale framing, and cross-scale interactions in collaborative conservation, J. Environ. 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2020, Trends and drivers of African fossil fuel CO2 emissions 1990–2017, Environ. Res. Lett., 15, 10.1088\u002F1748-9326\u002Fabc64f\nBogner, J., M. Abdelrafie Ahmed, C. Diaz, A. Faaij, Q. Gao, S. Hashimoto, K. Mareckova, R. Pipatti, T. Zhang, Waste Management, In Climate Change 2007: Mitigation. Contribution of Working Group III to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change [B. Metz, O.R. Davidson, P.R. Bosch, R. Dave, L.A. Meyer (eds)], Cambridge University Press, Cambridge, United Kingdom and New York, NY, USA.\nBrazier, 2015\nBrown, D., Chanakira, R., Chatiza, K., Dhliwayo, M., Dodman, D., Masiiwa, M., Muchadenyika, D., Mugabe, P. and Zvigadza, S. (2012). “Climate Change Impacts, Vulnerability and Adaptation in Zimbabwe”. IIED Climate Change Working Paper 3, October 2012: http:\u002F\u002Fpubs.iied.org\u002Fpdfs\u002F10034IIED.pdf, accessed 20 September 2021.\nChagutah, 2010\nChatiza, 2019, The Impact of and Responses to Cyclone Idai in Zimbabwe: An analysis of policy implications for post-disaster institutional development, Oxfam\nChirisa, 2021, Interrogating Climate Adaptation Financing in Zimbabwe: Proposed Direction, Sustainability, 13, 1, 10.3390\u002Fsu13126517\nCIAT; World Bank. (2017). Climate-Smart Agriculture in Zimbabwe. CSA Country Profiles for Africa Series. International Center for Tropical Agriculture (CIAT); Washington, D.C.\nClimate Technology Centre and Network, (2017). Climate-Smart Agriculture Manual for Zimbabwe, Denmark.\nCTCN (Climate Technology Centre and Network). (2017). Climate-Smart Agriculture Manual for Zimbabwe (CSA Manual). Denmark. Accessed on 1 May, 2021 from.\nDe Melo J and Sollede, J, (2022). 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Energy Res., 9, 10.3389\u002Ffenrg.2021.743114\nKo, 2019, Energy transitions towards low carbon resilience : evaluation of disaster-triggered local and regional cases, Sustainability, 11, 1\nMabaso, 2021, Provision of green infrastructure as an urban resilience strategy in Masvingo City, Zimbabwe\nMadzwamuse, 2010\nManakhov, 2022, A perspective on decarbonizing mobility: an all-electrification vs. an all-hydrogenization venue, Energies, 15, 5440, 10.3390\u002Fen15155440\nMasekesa, 2021, The potential of public-private partnerships (PPPs) in the pursuit of sustainable development goal 11 in Zimbabwe, PER \u002F PELJ, 24, 1, 10.17159\u002F1727-3781\u002F2021\u002Fv24i0a9093\nMcConnell, 2010, Policy success, policy failure and grey areas in-between, J. Public Policy, 30, 345, 10.1017\u002FS0143814X10000152\nWorld Bank. 2020. Climate smart agriculture. https:\u002F\u002Fwww.worldbank.org\u002Fen\u002Ftopic\u002Fclimate-smart-agriculture.\nMilder. J C, Majanen. T, Sara J., Scherr. S J, (2011). Performance and Potential of Conservation Agriculture for Climate Change Adaptation and Mitigation in Sub-Saharan Africa report in An assessment of WWF and CARE projects in support of the WWF-CARE Alliance’s Rural Futures Initiative.\nMilne, 2019\nMinistry of Lands, Agriculture,Water, Climate, and Rural Resettlement, 2018. Climate Smart Agriculture Framework 2018 – 2028, Government of Zimbabwe.\nMohsin, 2021, Mining industry impact on environmental sustainability, economic growth, social interaction, and public health: An application of semi-quantitative mathematical approach, Processes, 9, 10.3390\u002Fpr9060972\nMubaiwa. L, 2015. Revitalization of forest training centres in the SADC region for green employment – Phase I: Training needs assessment study report for the forestry, forest industry and micro, small and medium enterprises (MSMEs) sectors in Zimbabwe, Zimbabwe-TNA-Report.\nMunuhwa, 2020, Approaches for reducing urban traffic congestion in the city of Harare, J. Econ. Sustainable Dev., 11, 1\nNguyen, 2020, Intelligent total transportation management system for future smart cities, Appl. Sci., 10, 1\nPalmer-wilson, 2019, Impact of land requirements on electricity system decarbonisation pathways, Energy Policy, 129, 193, 10.1016\u002Fj.enpol.2019.01.071\nPowlson, 2015, Does Conservation agriculture deliver climate change mitigation through soil carbon sequestration in tropical agro-ecosystems?, Agric. Ecosyst. Environ., 220, 164\nSachikonye, 2005, The land is the economy: revisiting the land question, Afr. Secur. Stud., 14, 31\nThomas, 2020, Decarbonising energy : The developing international activity in hydrogen technologies and fuel cells, J. Energy Chem., 10.1016\u002Fj.jechem.2020.03.087\nThomson Reuters Foundation. (2017). Construction on wetlands ramps up water stress in Zimbabwe. News.Trust.Org. https:\u002F\u002Fnews.trust.org\u002Fitem\u002F20170627000310-qdjud\u002F.\nThondhlana, 2014\nTIMB, (2015). Tobacco Industry Initiatives to Reduce the Negative Environmental Footprint caused by Tobacco Production, https:\u002F\u002Fwww.timb.co.zw\u002Fstorage\u002Fapp\u002Fmedia\u002Fdownloads\u002FInitiatives%20for%20Reducing%20the%20Negative%20Environmental%20Footprint%20of%20Tobacco.pdf (Accessed 28\u002F09\u002F21).\nUjeneza, 2015\nUnited Nations, 2015\nWolfswinkel, 2011, Using grounded theory as a method for rigorously reviewing literature, Eur. J. Inform. Syst., 22, 45, 10.1057\u002Fejis.2011.51\nZhakata, 2019, Governing climate change: general principles and the Paris agreement\nZimbabwe’s National Climate Change Response Strategy, 2014\nMoyo, A. 2020. Electric car launched. The Herald, 2 December 2020. https:\u002F\u002Fwww.herald.co.zw\u002Felectric-car-launched\u002F.\nHerald, 2021. Petrol blending back to E20. https:\u002F\u002Fwww.herald.co.zw\u002Fpetrol-blending-back-to-e20\u002F. 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2002, Common resources and institutional stability\nAnderies, 2004, A framework to analyze the robustness of social-ecological systems from an institutional perspective, Ecol. 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