Toward Water, Energy, and Food Security in Rural Indonesia: A Review
Abstract
:1. Introduction
2. Methods
3. Theoretical Perspective of WEF Nexus
3.1. Ecosystem Perspective
3.2. Socioeconomic and Cultural Perspective
3.3. Political and Institutional Perspectives
4. Rural Development in Indonesia
4.1. Rural Condition
4.2. Village Overviews from a Regulatory Perspective
4.3. Sustainable Rural Development, Adapting Sustainable Development Goals
5. Implementing the Rural Water, Energy, and Food Nexus: Case Analysis
5.1. Opportunity and Challenges
5.1.1. Policy and Regulation
5.1.2. Institution
5.1.3. Water Potential: An Enabling Factor
5.1.4. Constraints and Strategy of Implementing Nexus Approach in WEF Management
5.2. WEF Nexus Implementation: Lesson Learned
5.2.1. Agroforestry as an Option for Promoting Rural Water and Food Security
5.2.2. Microhydropower and Productive Use of Energy (PUE) Development: Relating Water to Energy Security
5.2.3. Social Forestry to Support Water, Energy, and Food Security of Forest-Dependent People
5.2.4. Paludiculture as an Alternative Sustainable Peatland Utilization for Food
5.2.5. Participatory Water Resource Management (WRM)
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Bellfield, H.; Sabogal, D.; Pareira, J.; Gangga, A.; Leggett, M. Achieving Water, Energy and Food Security in Indonesia; Global Canopy Programme-WCS: Oxford, UK, 2018. [Google Scholar]
- FAO. Global Forest Resources Assessment 2020; Food and Agriculture Organization: Rome, Italy, 2020. [Google Scholar] [CrossRef]
- Gerold, G. Soil and Water Degradation Following Forest Conversion in the Humid Tropics (Indonesia). In Land Degradation and Desertification: Assessment, Mitigation and Remediation; Zdruli, P., Pagliai, M., Kapur, S., Faz Cano, A., Eds.; Springer: Dordrecht, The Netherlands, 2010; pp. 267–283. [Google Scholar] [CrossRef]
- Allan, J.A. Virtual Water—The Water, Food, and Trade Nexus. Useful Concept or Misleading Metaphor? Water Int. 2003, 28, 106–113. [Google Scholar] [CrossRef]
- Mustafa, M.A.; Mabhaudhi, T.; Massawe, F. Building a resilient and sustainable food system in a changing world—A case for climate-smart and nutrient dense crops. Glob. Food Secur. 2021, 28, 100477. [Google Scholar] [CrossRef]
- Hoff, H. Understanding the Nexus, Background paper for the Bonn 2011 Nexus Conference. In Proceedings of the Water, Energy and Food Security Nexus: Solutions for the Green Economy, Bonn, Germany, 16–18 November 2011. [Google Scholar]
- Millennium Ecosystem Assessment. Ecosystems and Human Well-Being; Island Press United States of America: Washington, DC, USA, 2005; Volume 5. [Google Scholar]
- FAO. The Water-Energy-Food Nexus—A New Approach in Support of Food Security and Sustainable Agriculture; FAO: Rome, Italy, 2014; pp. 1–11. [Google Scholar]
- Karabulut, A.A.; Crenna, E.; Sala, S.; Udias, A. A proposal for integration of the ecosystem-water-food-land-energy (EWFLE) nexus concept into life cycle assessment: A synthesis matrix system for food security. J. Clean. Prod. 2018, 172, 3874–3889. [Google Scholar] [CrossRef]
- Nugroho, H. Memperkokoh Keterkaitan Ketahanan Pangan, Energi, dan Air (Food-Energy-Water Nexus) Dalam Perencanaan Pembangunan Indonesia. In Bappenas Working Papers; Kementerian Perencanaan Pembangunan Nasional (Bappenas): Jakarta, Indonesia, 2020; Volume 3, pp. 238–243. [Google Scholar]
- Presiden Republik Indonesia. Lampiran I Peraturan Presiden Nomor 18 Tahun 2020 Tentang Rencana Pembangunan Jangka Menengah Nasional Tahun 2020–2024; Kementerian Sekretariat Negara: Jakarta, Indonesia, 2020.
- Iskandar, A.H. SDGs Desa. Available online: https://sdgsdesa.kemendesa.go.id/sdgs-desa-2/ (accessed on 19 November 2021).
- Badan Pusat Statistik. Statistik Indonesia 2020; Badan Pusat Statistik: Jakarta, Indonesia, 2021.
- Sirajuddin, T. Rural development strategies in Indonesia: Managing villages to achieve sustainable development. IOP Conf. Ser. Earth Environ. Sci. 2020, 447, 12066. [Google Scholar] [CrossRef]
- Nhamo, L.; Ndlela, B.; Mpandeli, S.; Mabhaudhi, T. The Water-Energy-Food Nexus as an Adaptation Strategy for Achieving Sustainable Livelihoods at a Local Level. Sustainability 2020, 12, 8582. [Google Scholar] [CrossRef]
- Babbie, E. The Practice of Social Research, 15th ed.; Cengage: Boston, MA, USA, 2020. [Google Scholar]
- Abdi, H.; Shahbazitabar, M.; Mohammadi-Ivatloo, B. Food, Energy and Water Nexus: A Brief Review of Definitions, Research, and Challenges. Inventions 2020, 5, 56. [Google Scholar] [CrossRef]
- Benson, D.; Gain, A.K.; Rouillard, J.J. Water Governance in a Comparative Perspective: From IWRM to a ‘Nexus’ Approach? Water Altern. 2015, 8, 756–773. [Google Scholar]
- Mabhaudhi, T.; Nhamo, L.; Mpandeli, S.; Nhemachena, C.; Senzanje, A.; Sobratee, N.; Chivenge, P.P.; Slotow, R.; Naidoo, D.; Liphadzi, S.; et al. The Water-Energy-Food Nexus as a Tool to Transform Rural Livelihoods and Well-Being in Southern Africa. Int. J. Environ. Res. Public Health 2019, 16, 2970. [Google Scholar] [CrossRef] [Green Version]
- Fernandes Torres, C.J.; Peixoto de Lima, C.H.; Suzart de Almeida Goodwin, B.; Rebello de Aguiar Junior, T.; Sousa Fontes, A.; Veras Ribeiro, D.; Saldanha Xavier da Silva, R.; Dantas Pinto Medeiros, Y. A Literature Review to Propose a Systematic Procedure to Develop “Nexus Thinking” Considering the Water–Energy–Food Nexus. Sustainability 2019, 11, 7205. [Google Scholar] [CrossRef] [Green Version]
- Howarth, C.; Monasterolo, I. Understanding barriers to decision making in the UK energy-food-water nexus: The added value of interdisciplinary approaches. Environ. Sci. Policy 2016, 61, 53–60. [Google Scholar] [CrossRef] [Green Version]
- Simpson, G.B.; Jewitt, G.P.W. The Development of the Water-Energy-Food Nexus as a Framework for Achieving Resource Security: A Review. Front. Environ. Sci. 2019, 7, 8. [Google Scholar] [CrossRef] [Green Version]
- Zisopoulou, K.; Zisopoulos, D.; Panagoulia, D. Water Economics: An In-Depth Analysis of the Connection of Blue Water with Some Primary Level Aspects of Economic Theory I. Water 2022, 14, 103. [Google Scholar] [CrossRef]
- Department of Economic and Social Affairs. Growing at a Slower Pace, World Population is Expected to Reach 9.7 Billion in 2050 and Could Peak at Nearly 11 Billion around 2100. Available online: https://www.un.org/development/desa/en/news/population/world-population-prospects-2019.html (accessed on 27 November 2021).
- Boretti, A.; Rosa, L. Reassessing the projections of the World Water Development Report. NPJ Clean Water 2019, 2, 15. [Google Scholar] [CrossRef]
- UN Water. Vakuing Water; The United Nations Educational, Scientific and Cultural Organization (UNESCO): Paris, France, 2021. [Google Scholar]
- Ortiz-Bobea, A.; Ault, T.R.; Carrillo, C.M.; Chambers, R.G.; Lobell, D.B. Anthropogenic climate change has slowed global agricultural productivity growth. Nat. Clim. Change 2021, 11, 306–312. [Google Scholar] [CrossRef]
- GWP. Water-Energy-Food-Ecosystems Nexus. Available online: https://www.gwp.org/en/GWP-Mediterranean/WE-ACT/Programmes-per-theme/Water-Food-Energy-Nexus/ (accessed on 10 January 2022).
- Brear, M.R.; Mbonane, B.M. Social values, needs, and sustainable water–energy–food resource utilisation practices: A rural Swazi case study. Sustain. Sci. 2019, 14, 1363–1379. [Google Scholar] [CrossRef]
- Molajou, A.; Afshar, A.; Khosravi, M.; Soleimanian, E.; Vahabzadeh, M.; Variani, H.A. A new paradigm of water, food, and energy nexus. Environ. Sci. Pollut. Res. 2021. [Google Scholar] [CrossRef]
- Moraes-Santos, E.C.; Dias, R.A.; Balestieri, J.A.P. Groundwater and the water-food-energy nexus: The grants for water resources use and its importance and necessity of integrated management. Land Use Policy 2021, 109, 105585. [Google Scholar] [CrossRef]
- Nhamo, L.; Ndlela, B.; Nhemachena, C.; Mabhaudhi, T.; Mpandeli, S.; Matchaya, G. The Water-Energy-Food Nexus: Climate Risks and Opportunities in Southern Africa. Water 2018, 10, 567. [Google Scholar] [CrossRef] [Green Version]
- Rasul, G.; Neupane, N. Improving Policy Coordination across the Water, Energy, and Food, Sectors in South Asia: A Framework. Front. Sustain. Food Syst. 2021, 5, 40. [Google Scholar] [CrossRef]
- Purwanto, A.; Sušnik, J.; Suryadi, F.X.; de Fraiture, C. Water-Energy-Food Nexus: Critical Review, Practical Applications, and Prospects for Future Research. Sustainability 2021, 13, 1919. [Google Scholar] [CrossRef]
- Bazilian, M.; Rogner, H.; Howells, M.; Hermann, S.; Arent, D.; Gielen, D.; Steduto, P.; Mueller, A.; Komor, P.; Tol, R.S.J.; et al. Considering the Energy, Water and Food Nexus: Towards an Integrated Modelling Approach. Energy Policy 2011, 39, 7896–7906. [Google Scholar] [CrossRef]
- Wang, K.; Liu, J.; Xia, J.; Wang, Z.; Meng, Y.; Chen, H.; Mao, G.; Ye, B. Understanding the impacts of climate change and socio-economic development through food-energy-water nexus: A case study of mekong river delta. Resour. Conserv. Recycl. 2021, 167, 105390. [Google Scholar] [CrossRef]
- AlQuran, S.; Hayajneh, A.; ElShaer, H. Nexus Comprehensive Methodological Framework: The MENA Region Initiative as a Model of Nexus Approach and Renewable Energy Technologies; IUCN: Amman, Jordan, 2019; pp. 1–61. [Google Scholar]
- Proctor, K.; Tabatabaie, S.M.H.; Murthy, G.S. Gateway to the perspectives of the Food-Energy-Water nexus. Sci. Total Environ. 2021, 764, 142852. [Google Scholar] [CrossRef]
- Namany, S.; Govindan, R.; Martino, M.D.; Pistikopoulos, E.N.; Linke, P.; Avraamidou, S.; Al-Ansari, T. An Energy-Water-Food Nexus-based Decision-making Framework to Guide National Priorities in Qatar. Sustain. Cities Soc. 2021, 75, 103342. [Google Scholar] [CrossRef]
- Markantonis, V.; Reynaud, A.; Karabulut, A.; El Hajj, R.; Altinbilek, D.; Awad, I.M.; Bruggeman, A.; Constantianos, V.; Mysiak, J.; Lamaddalena, N.; et al. Can the Implementation of the Water-Energy-Food Nexus Support Economic Growth in the Mediterranean Region? The Current Status and the Way Forward. Front. Environ. Sci. 2019, 7, 84. [Google Scholar] [CrossRef]
- Naidoo, D.; Nhamo, L.; Mpandeli, S.; Sobratee, N.; Senzanje, A.; Liphadzi, S.; Slotow, R.; Jacobson, M.; Modi, A.T.; Mabhaudhi, T. Operationalising the water-energy-food nexus through the theory of change. Renew. Sustain. Energy Rev. 2021, 149, 111416. [Google Scholar] [CrossRef]
- Märker, C.; Venghaus, S.; Hake, J.-F. Integrated governance for the food–energy–water nexus—The scope of action for institutional change. Renew. Sustain. Energy Rev. 2018, 97, 290–300. [Google Scholar] [CrossRef]
- Kondash, A.J.; Herrera, I.; Castellanos, E.; Baker, J.; Leiva, B.; Van Houtven, G.; Fuentes, G.; Alfaro, G.; Henry, C.; Wade, C.; et al. Food, energy, and water nexus research in Guatemala—A systematic literature review. Environ. Sci. Policy 2021, 124, 175–185. [Google Scholar] [CrossRef]
- Vats, G.; Sharma, D.; Sandu, S. A flexible input-output price model for assessment of a nexus perspective to energy, water, food security policymaking. Renew. Sustain. Energy Transit. 2021, 1, 100012. [Google Scholar] [CrossRef]
- Nurlinah, N.; Haryanto, H. Institutional Mechanisms and Civic Forum in Coastal Village Governance in Indonesia. Public Policy Adm. 2020, 19, 76–85. [Google Scholar] [CrossRef]
- Van den Berg, H.; Ketelaar, J.W.; Dicke, M.; Fredrix, M. Is the farmer field school still relevant? Case studies from Malawi and Indonesia. NJAS Wagening J. Life Sci. 2021, 92, 100329. [Google Scholar] [CrossRef]
- Cahyono, B.; Adhiatma, A. Peran modal sosial dalam peningkatan kesejahteraan masyarakat petani tembakau di Kabupaten Wonosobo. In Proceedings of the Conference in Business, Accounting and Management (CBAM), Semarang, Indonesia, 1 December 2021; pp. 131–144. [Google Scholar]
- Mehraban, N.; Ickowitz, A. Dietary diversity of rural Indonesian households declines over time with agricultural production diversity even as incomes rise. Glob. Food Secur. 2021, 28, 100502. [Google Scholar] [CrossRef]
- Wise, R.M.; Butler, J.R.A.; Suadnya, W.; Puspadi, K.; Suharto, I.; Skewes, T.D. How climate compatible are livelihood adaptation strategies and development programs in rural Indonesia? Clim. Risk Manag. 2016, 12, 100–114. [Google Scholar] [CrossRef] [Green Version]
- Saptutyningsih, E.; Diswandi, D.; Jaung, W. Does social capital matter in climate change adaptation? A lesson from agricultural sector in Yogyakarta, Indonesia. Land Use Policy 2020, 95, 104189. [Google Scholar] [CrossRef]
- Sekaran, U.; Lai, L.; Ussiri, D.A.N.; Kumar, S.; Clay, S. Role of integrated crop-livestock systems in improving agriculture production and addressing food security—A review. J. Agric. Food Res. 2021, 5, 100190. [Google Scholar] [CrossRef]
- Mohri, H.; Lahoti, S.; Saito, O.; Mahalingam, A.; Gunatilleke, N.; Irham; Hoang, V.T.; Hitinayake, G.; Takeuchi, K.; Herath, S. Assessment of ecosystem services in homegarden systems in Indonesia, Sri Lanka, and Vietnam. Ecosyst. Serv. 2013, 5, 124–136. [Google Scholar] [CrossRef]
- Jumadil; Rachman, I.; Hapid, A. Analisis penggunaan kayu bakar masyarakat di Dusun Salena Kelurahan Buluri Kecamatan Ulujadi Kota Palu. J. War. Rimba 2018, 6, 21–26. [Google Scholar]
- Bakti, H.S. Identifikasi Masalah Dan Potensi Desa Berbasis Indek Desa Membangun (Idm) Di Desa Gondowangi Kecamatan Wagir Kabupaten Malang. Wiga: J. Penelit. Ilmu Ekon. 2018, 7, 1–14. [Google Scholar] [CrossRef] [Green Version]
- Hidayati, D. Memudarnya nilai kearifan lokal masyarakat dalam pengelolaan sumber daya air. J. Kependud. Indones. 2016, 11, 39–48. [Google Scholar] [CrossRef] [Green Version]
- Ra’is, D.U. Kebijakan pemberdayaan masyarakat dalam persfektif asas rekognisi dan subsidiaritas Undang-Undang Desa Nomor 6 Tahun 2014. Reformasi 2017, 7. [Google Scholar] [CrossRef]
- Ministry of National Development Planning National Development Planning Agency. Pedoman Teknis Penyusunan Rencana Aksi—Tujuan Pembangunan Berkelanjutan/Sustainable Development Goals (TPB/SDGs), 2nd ed.; Kedeputian Bidang Kemaritiman dan Sumber Daya Alam, Kementerian Perencanaan Pembangunan Nasional/Badan Perencanaan Pembangunan Nasiona: Jakarta, Indonesia, 2020.
- Kovach, H. External Finance for Rural Development, Country Case Study: Indonesia; ODI: London, UK, 2020. [Google Scholar]
- Kordi, M.; Ghufran, H. Mencapai Tujuan Pembangunan Berkelanjutan Dari Desa. Available online: https://baktinews.bakti.or.id/tentang-baktinews-online (accessed on 31 January 2022).
- Reza, M. SDGs Desa dan Rekonstruksi Paradigma Pembangunan Berkelanjutan. Available online: https://sdgsdesa.kemendesa.go.id/sdgs-desa-dan-rekonstruksi-paradigma-pembangunan-berkelanjutan/ (accessed on 8 January 2022).
- Masterplan Desa Tahun 2022 Waktunya Kolaborasi Membangun Desa. Available online: https://www.masterplandesa.com/penataan-desa/tahun-2022-waktunya-kolaborasi-membangun-desa/ (accessed on 7 October 2021).
- DEN. Rencana Strategis Sekretariat Jenderal Dewan Energi Nasional Tahun 2020–2024; Dewan Energi Nasional: Jakarta, Indonesia, 2020.
- Scott, A. Making Governance Work for Water–Energy–Food Nexus Approaches; Climate and Development Knowledge Network (CDKN). 2017. Available online: https://cdkn.org/sites/default/files/files/Working-paper_CDKN_Making-governance-work-for-water-energy-food-nexus-approaches.pdf (accessed on 8 December 2021).
- Bellfield, H.; Leggett, M.; Trivedi, M.; Pareira, J.; Gangga, A. How Can Indonesia Achieve Water, Energy and Food Security without Eroding Its Natural Capital? Global Canopy Programme—WCS: Oxford, UK, 2018; p. 30. [Google Scholar]
- Fakhriyah, F.; Yeyendra, Y.; Marianti, A. Integrasi Smart Water Management Berbasis Kearifan Lokal Sebagai Upaya Konservasi Sumber Daya Air di Indonesia. Indones. J. Conserv. 2021, 10, 34–41. [Google Scholar] [CrossRef]
- Fulazzaky, M.A. Challenges of Integrated Water Resources Management in Indonesia. Water 2014, 6, 2000–2020. [Google Scholar] [CrossRef] [Green Version]
- Vallee, D.; Margat, J.; Eliasson, A.; Hoogeveen, J. Review of World Water Resources by Country; Food and Agricultural Organization of the United Nations: Rome, Italy, 2003. [Google Scholar]
- Pawitan, H.; Haryani, G.S. Water resources, sustainability and societal livelihoods in Indonesia. Ecohydrol. Hydrobiol. 2011, 11, 231–243. [Google Scholar] [CrossRef]
- Pawitan, H.; Dasanto, B.D.; Suharsono, H. Keseimbangan Air Indonesia Menurut Kabupaten [Indonesia Water Balance by Districts Level]; IPB-Badan Litbang Pertanian Bogor: Bogor, Indonesia, 1996.
- Radhika; Firmansyah, R.; Hatmoko, W. Perhitungan ketersediaan air permukaan di indonesia berdasarkan data satelit. J. Sumber Daya Air 2017, 13, 115–130. [Google Scholar] [CrossRef]
- Badan Pusat Statistik. In Indonesia menurut Provinsi 1971, 1980, 1990, 1995, 2000 dan 2010; Badan Pusat Statistik: Jakarta, Indonesia, 2021.
- Badan Pusat Statistik. Jumlah Penduduk Menurut Provinsi di Indonesia (Ribu), 2016–2020; Dinas Komunikasi dan Informatika Provinsi Sumatera Selatan Palembang: Kota Palembang, Indonesia, 2020.
- Triweko, R.W. Ketahanan air untuk Indonesia: Pandangan akademisi. In Proceedings of the Indonesia Water Learning Week (IWLW): Water Security for Indonesia: Examining the Water-Energy-Food Nexus, Jakarta, Indonesia, 24–26 November 2014. [Google Scholar]
- Piesse, M. Indonesian Water Security: Improving but Still Subject to Shocks. Future Derections International 2016. Available online: http://inford.org/indonesian-water-security-improving-but-still-subject-to-shocks/ (accessed on 8 December 2021).
- Suroso, D.S.A.; Abdurahman, O.; Setiawan, B. Impacts of Climate Change on the sustainability of Water Supply in Indonesia. In Proceedings of the The 2nd International Workshop on Water Supply Management System and Social Capita, Kyoto, Japan, 15–16 March 2010. [Google Scholar]
- Hatmoko, W.; Triweko, R.W.; Yudianto, D. Sistem pendukung keputusan untuk perencanaan alokasi air secara partisipatoris pada suatu wilayah sungai. J. Tek. Hidraul. 2012, 3, 71–86. [Google Scholar] [CrossRef]
- Farida; Dasrizal; Febriani, T. Produktivitas Air dalam Pengelolaan Sumber daya Air Pertanian di Indonesia. J. Spasial 2018, 5, 65–72. [Google Scholar] [CrossRef]
- Sallata, M.K.; Nugroho, H.Y.S.H.; Wakka, A.K. The Utilization of Microhydro Power to Establish Energy Self-Sufficient Village. J. Penelit. Kehutan. Wallacea 2015, 4, 71–80. [Google Scholar] [CrossRef] [Green Version]
- Pambudi, A.S. Watershed Management in Indonesia: A Regulation, Institution, and Policy Review. J. Perenc. Pembang. Indones. J. Dev. Plan. 2019, 3, 185–202. [Google Scholar] [CrossRef]
- Nugroho, H.Y.S.H.; Basuki, T.M.; Pramono, I.B.; Savitri, E.; Purwanto; Indrawati, D.R.; Wahyuningrum, N.; Adi, R.N.; Indrajaya, Y.; Supangat, A.B.; et al. Forty Years of Soil and Water Conservation Policy, Implementation, Research and Development in Indonesia: A Review. Sustainability 2022, 14, 2972. [Google Scholar] [CrossRef]
- Waskitho, N.T.; Pratama, A.A.; Muttaqin, T. Sectoral Integration in Watershed Management in Indonesia: Challenges and Recomendation. IOP Conf. Ser. Earth Environ. Sci. 2021, 752, 012035. [Google Scholar] [CrossRef]
- Indrawati, D.R. Stakeholders Participation and Collaboration in Naruan Micro Watershed Management. In Building Integration of Watershed Management at the Implementation Level; Supangat, A.B., Dharmwan, I.W.S., Eds.; IPB Press: Bogor, Indonesia, 2019; pp. 45–55. [Google Scholar]
- Indrawati, D.R.; Awang, S.A.; Faida, L.R.W.; Maryudi, A. Community Empowerment in Micro Watershed Management: Concept and Implementation. Kawistara-J. Ilm. Sos. Dan Hum. 2016, 6, 175–187. [Google Scholar]
- Takbiran, H. Bank Sampah Sebagai Alternatif Strategi Pengelolaan Sampah Menuju Sentul City Zero Emission Waste Kabupaten Bogor. IJEEM—Indones. J. Environ. Educ. Manag. 2020, 5, 165–172. [Google Scholar] [CrossRef] [Green Version]
- Kornita, S.E. Strategi Pemenuhan Kebutuhan Masyarakat terhadap Air Bersih di Kabupaten Bengkalis. J. Samudra Ekon. Dan Bisnis 2020, 11, 166–181. [Google Scholar] [CrossRef]
- Supangat, A.B.; Agus, C.; Wahyuningrum, N.; Indrawati, D.R.; Purwanto. Soil and Water Conservation Planning toward Sustainable Management of Upstream Watershed in Indonesia; Leal, F.W., Azeiteiro, U.M., Setti, A.F.F., Eds.; World Sustainability Series; Springer: Cham, Switzerland, 2021; pp. 77–91. [Google Scholar] [CrossRef]
- Lubis, R.F.; Delinom, R.; Martosuparno, S.; Bakti, H. Water-Food Nexus in Citarum Watershed, Indonesia. IOP Conf. Ser. Earth Environ. Sci. 2018, 118, 012023. [Google Scholar] [CrossRef]
- Nasikh; Kamaludin, M.; Narmaditya, B.S.; Wibowo, A.; Febrianto, I. Agricultural land resource allocation to develop food crop commodities: Lesson from Indonesia. Heliyon 2021, 7, e07520. [Google Scholar] [CrossRef]
- Kusbiantoro, A.; Maryudi, A.; Gunawan, T. Degradation and Land Use System of Tulis Watershed. J. Wana Trop. 2017, 5, 15–25. [Google Scholar]
- Sihombing, Y. Diversifikasi Pangan Lokal untuk Mendukung Ketahanan Pangan pada Masa Pandemi COVID-19. Agric. Technol. Inf. Bull. 2021, 19, 1–12. (In Indonesian) [Google Scholar]
- Maridi. Using Culture and Local Wisdom in Soil and Water Conservation. In Proceedings of the Seminar Nasional XII Pendidikan Biologi FKIP UNS, Surakarta, Indonesia, 1 November 2015; pp. 20–39. [Google Scholar]
- Badan Pusat Statistik. Hasil Sensus Penduduk 2020; Badan Pusat Statistik: Jakarta, Indonesia, 2021.
- Badan Ketahanan Pangan. Road Map Diversifikasi Pangan Lokal Sumber Karbohidrat Non Beras (2020–2024); 9788578110796; Badan Ketahanan Pangan: Jakarta, Indonesia, 2020; pp. 1–49.
- Mulia, R.; Hoang, S.V.; Dinh, V.M.; Duong, N.B.T.; Nguyen, A.D.; Lam, D.H.; Thi Hoang, D.T.; van Noordwijk, M. Earthworm Diversity, Forest Conversion and Agroforestry in Quang Nam Province, Vietnam. Land 2021, 10, 36. [Google Scholar] [CrossRef]
- Amundson, R.; Berhe, A.A.; Hopmans, J.W.; Olson, C.; Sztein, A.E.; Sparks, D.L. Soil science. Soil and human security in the 21st century. Science 2015, 348, 1261071. [Google Scholar] [CrossRef] [Green Version]
- Tan, Z.X.; Lal, R.; Wiebe, K.D. Global Soil Nutrient Depletion and Yield Reduction. J. Sustain. Agric. 2005, 26, 123–146. [Google Scholar] [CrossRef]
- Abdurachman, A.; Dariah, A.; Mulyani, A. Strategi dan teknologi pengelolaan lahan kering mendukung pengadaan pangan nasional. J. Litbang Pertan. 2008, 27, 43–49. [Google Scholar]
- Pusat KKP. Laporan Kinerja Tahun 2020 Pusat Ketersediaan dan Kerawanan Pangan; Pusat Ketersediaan dan Kerawanan Pangan, Badan Ketahanan Pangan, Kementerian Pertanian: Jakarta, Indonesia, 2021.
- Van Noordwijk, M.; Bizard, V.; Wangpakapattanawong, P.; Tata, H.L.; Villamor, G.B.; Leimona, B. Tree cover transitions and food security in Southeast Asia. Glob. Food Secur. 2014, 3, 200–208. [Google Scholar] [CrossRef] [Green Version]
- Elagib, N.A.; Al-Saidi, M. Balancing the benefits from the water–energy–land–food nexus through agroforestry in the Sahel. Sci. Total Environ. 2020, 742, 140509. [Google Scholar] [CrossRef] [PubMed]
- Van Noordwijk, M.; Speelman, E.; Hofstede, G.J.; Farida, A.; Abdurrahim, A.Y.; Miccolis, A.; Hakim, A.L.; Wamucii, C.N.; Lagneaux, E.; Andreotti, F.; et al. Sustainable Agroforestry Landscape Management: Changing the Game. Land 2020, 9, 243. [Google Scholar] [CrossRef]
- Nguyen, Q.; Hoang, M.H.; Öborn, I.; van Noordwijk, M. Multipurpose agroforestry as a climate change resiliency option for farmers: An example of local adaptation in Vietnam. Clim. Change 2013, 117, 241–257. [Google Scholar] [CrossRef]
- Van Noordwijk, M.; Kim, Y.-S.; Leimona, B.; Hairiah, K.; Fisher, L.A. Metrics of water security, adaptive capacity, and agroforestry in Indonesia. Curr. Opin. Environ. Sustain. 2016, 21, 1–8. [Google Scholar] [CrossRef]
- Altieri, M.A.; Nicholls, C.I.; Henao, A.; Lana, M.A. Agroecology and the design of climate change-resilient farming systems. Agron. Sustain. Dev. 2015, 35, 869–890. [Google Scholar] [CrossRef] [Green Version]
- Waldron, A.; Garrity, D.; Malhi, Y.; Girardin, C.; Miller, D.C.; Seddon, N. Agroforestry Can Enhance Food Security While Meeting Other Sustainable Development Goals. Trop. Conserv. Sci. 2017, 10, 1–6. [Google Scholar] [CrossRef] [Green Version]
- Okumu, B.; Kehbila, A.G.; Osano, P. A review of water-forest-energy-food security nexus data and assessment of studies in East Africa. Curr. Res. Environ. Sustain. 2021, 3, 100045. [Google Scholar] [CrossRef]
- Sharma, N.; Bohra, B.; Pragya, N.; Ciannella, R.; Dobie, P.; Lehmann, S. Bioenergy from agroforestry can lead to improved food security, climate change, soil quality, and rural development. Food Energy Secur. 2016, 5, 165–183. [Google Scholar] [CrossRef] [Green Version]
- Wezel, A.; Casagrande, M.; Celette, F.; Vian, J.-F.; Ferrer, A.; Peigné, J. Agroecological practices for sustainable agriculture. A review. Agron. Sustain. Dev. 2013, 34, 1–20. [Google Scholar] [CrossRef] [Green Version]
- Van Noordwijk, M. Integrated natural resource management as pathway to poverty reduction: Innovating practices, institutions and policies. Agric. Syst. 2019, 172, 60–71. [Google Scholar] [CrossRef]
- Torralba, M.; Fagerholm, N.; Burgess, P.J.; Moreno, G.; Plieninger, T. Do European agroforestry systems enhance biodiversity and ecosystem services? A meta-analysis. Agric. Ecosyst. Environ. 2016, 230, 150–161. [Google Scholar] [CrossRef] [Green Version]
- Van Noordwijk, M. Agroforestry as part of climate change response. IOP Conf. Ser. Earth Environ. Sci. 2018, 200, 012002. [Google Scholar] [CrossRef]
- Stocks, C. Micro Hydropower and the Water-Energy-Food Nexus. Available online: https://www.nsenergybusiness.com/features/micro-hydropower-water-energy-food-nexus/ (accessed on 8 December 2021).
- Abbasi, T.; Abbasi, S.A. Small hydro and the environmental implications of its extensive utilization. Renew. Sustain. Energy Rev. 2011, 15, 2134–2143. [Google Scholar] [CrossRef]
- Kaldellis, J.K. The contribution of small hydro power stations to the electricity generation in Greece: Technical and economic considerations. Energy Policy 2007, 35, 2187–2196. [Google Scholar] [CrossRef]
- Sapkota, A.; Lu, Z.; Yang, H.; Wang, J. Role of renewable energy technologies in rural communities’ adaptation to climate change in Nepal. Renew. Energy 2014, 68, 793–800. [Google Scholar] [CrossRef]
- Cabraal, R.A.; Barnes, D.F.; Agarwal, S.G. Productive Uses Of Energy for Rural Development. Annu. Rev. Env. Resour. 2005, 30, 117–144. [Google Scholar] [CrossRef]
- Nugroho, H.Y.S.H.; Sallata, M.K. PLTMH (Pembangkit Listrik Tenaga Mikro Hidro): Panduan Lengkap Membuat Sumber Energi Terbarukan Secara Swadaya; Penerbit Andi: Yogyakarta, Indonesia, 2015. [Google Scholar]
- Hardjomuljadi, S.; Siswoyo, S.D. Development of Mini/Micro Hydro Power Plant for Rural Electricity in Indonesia. J. Teknol. Energi 2012, 1, 1–12. [Google Scholar]
- Isa, M.A.; Sudjono, P.; Sato, T.; Onda, N.; Endo, I.; Takada, A.; Muntalif, B.S.; Ide, J.i. Assessing the Sustainable Development of Micro-Hydro Power Plants in an Isolated Traditional Village West Java, Indonesia. Energies 2021, 14, 6456. [Google Scholar] [CrossRef]
- Wube, D. Design and Analysis of Small Hydro Power for Rural Electrification. Glob. J. Res. Eng. F Electr. Electron. Eng. 2016, 16. [Google Scholar]
- Bisjoe, A.R.H.; Wakka, A.K.; Hayati, N.; Sumirat, B.; Ruru, A.; Rahim, A.; Purwanti, R.; Muin, N.; Zainuddin; Hermawan, A.; et al. Private Forest Management Partnership: Lessons Learned from Bulukumba, South Sulawesi; FORDA Press: Bogor (ID), Indonesia, 2016; p. 344. [Google Scholar]
- Javlec Indonesia. Perhutanan Sosial dan Tantangan Menjaga Hutan Tersisa di Indonesia. Available online: https://javlec.org/perhutanan-sosial-dan-tantangan-menjaga-hutan-tersisa-di-indonesia/ (accessed on 20 January 2022).
- Ika. Perhutanan Sosial Untuk Kedaulatan Pangan Nasional. Available online: https://ugm.ac.id/id/berita/20082-perhutanan-sosial-untuk-kedaulatan-pangan-nasional (accessed on 20 January 2022).
- Supratman, S.; Sahide, M. Hutan Desa dan Pembangunan Sosial Ekonomi Masyarakat Desa di Kabupaten Bantaeng; Direktorat Bina Perhutanan Sosial: Jakarta, Indonesia, 2013. [CrossRef]
- Muin, N.; Hapsari, E. Hutan Desa Kabupaten Bantaeng dan Manfaatnya bagi Masyarakat. Bul. Eboni 2014, 11, 27–36. [Google Scholar] [CrossRef]
- KEHATI. Dukungan TFCA-Sumatera untuk Perhutanan Sosial 2010–2019. Available online: https://kehati.or.id/dukungan-tfca-sumatera-untuk-perhutanan-sosial-2010-2019/ (accessed on 20 January 2022).
- Fauzi, D.; Wicaksono, S.A.; Chandra, A.; Khatimah, F.H. Towards Prosperity and Sustainability: The Progress of Social Forestry Implementation in Indonesia, 2019; World Bank: Washington, DC, USA, 2019; pp. 1–19. [Google Scholar]
- Yuwati, T.W.; Rachmanadi, D.; Mendham, D. Paludiculture Species Options for Restoration of Degraded Tropical Peatland in Central Kalimantan; Forest Research Institute: Banjarbaru, Indonesia, 2021. [Google Scholar]
- Ziegler, R.; Wichtmann, W.; Abel, S.; Kemp, R.; Simard, M.; Joosten, H. Wet peatland utilisation for climate protection—An international survey of paludiculture innovation. Clean. Eng. Technol. 2021, 5, 100305. [Google Scholar] [CrossRef]
- Uda, S.K.; Hein, L.; Adventa, A. Towards better use of Indonesian peatlands with paludiculture and low-drainage food crops. Wetl. Ecol. Manag. 2020, 28, 509–526. [Google Scholar] [CrossRef]
- Tata, H.L. Mixed farming systems on peatlands in Jambi and Central Kalimantan provinces, Indonesia: Should they be described as paludiculture? Mires Peat 2019, 25, 1–17. [Google Scholar] [CrossRef]
- Giesen, W. Tropical Peatland Restoration in Indonesia by Replanting with Useful Indigenous Peat Swamp Species: Paludiculture. In Tropical Peatland Eco-management; Osaki, M., Tsuji, N., Foead, N., Rieley, J., Eds.; Springer Nature Singapore Pte Ltd.: Singapore, 2021; pp. 411–441. [Google Scholar] [CrossRef]
- Budiman, I.; Bastoni; Sari, E.N.N.; Hadi, E.E.; Asmaliyah; Siahaan, H.; Januar, R.; Hapsari, R.D. Progress of paludiculture projects in supporting peatland ecosystem restoration in Indonesia. Glob. Ecol. Conserv. 2020, 23, e01084. [Google Scholar] [CrossRef]
- Giesen, W. Utilising non-timber forest products to conserve Indonesia’s peat swamp forests and reduce carbon emissions. J. Indones. Nat. Hist. 2015, 3, 69–72. [Google Scholar]
- Maimunah, S.; Rahman, S.; Samsudin, Y.; Artati, Y.; Simamora, T.; Andini, S.; Lee, S.; Baral, H. Assessment of Suitability of Tree Species for Bioenergy Production on Burned and Degraded Peatlands in Central Kalimantan, Indonesia. Land 2018, 7, 115. [Google Scholar] [CrossRef] [Green Version]
- Sakuntaladewi, N.; Rachmanadi, D.; Mendham, D.; Yuwati, T.W.; Winarno, B.; Premono, B.T.; Lestari, S.; Ardhana, A.; Ramawati; Budiningsih, K.; et al. Can We Simultaneously Restore Peatlands and Improve Livelihoods? Exploring Community Home Yard Innovations in Utilizing Degraded Peatland. Land 2022, 11, 150. [Google Scholar] [CrossRef]
- Soetisna, U.; Priadi, D.; Hartati, S.R.I.; Sudarmonowati, E. Storage and the Use of Peroxydase Enzyme to Detect Germination Capability of Sandoricum koetjape Merr. Seeds—A Neglected Tropical Fruit Species. Biodivers. J. Biol. Divers. 2005, 6, 1–5. [Google Scholar] [CrossRef]
- Liu, J.; Gao, G.; Wang, S.; Jiao, L.; Wu, X.; Fu, B. The effects of vegetation on runoff and soil loss: Multidimensional structure analysis and scale characteristics. J. Geogr. Sci. 2017, 28, 59–78. [Google Scholar] [CrossRef] [Green Version]
- Zhu, H.X.; Fu, B.J.; Wang, S. Reducing soil erosion by improving community functional diversity in semi-arid grasslands. J. Appl. Ecol. 2015, 52, 1063–1072. [Google Scholar] [CrossRef]
- FAO. Agroforestry for Landscape Restoration: Exploring the Potential of Agroforestry to Enhance the Sustainability and Resilience of Degraded Landscapes; FAO: Rome, Italy, 2017. [Google Scholar]
- Supriya, K.; Aggarwal, R.K.; Bhardwaj, S.K. Impact of Landuses on Air and Water Quality—A Review. Curr. World Environ. 2018, 13, 11–21. [Google Scholar] [CrossRef] [Green Version]
- McCarty, J.A.; Haggard, B.E. Can We Manage Nonpoint-Source Pollution Using Nutrient Concentrations during Seasonal Baseflow? Agric. Environ. Lett. 2016, 1, 160015. [Google Scholar] [CrossRef]
- Direktorat Jendral Pengendalian DAS dan Hutan Lindung. Laporan Kinerja Direktorat Jendral Pengendalian DAS dan Hutan Lindung 2020; Direktorat Jendral Pengendalian DAS dan Hutan Lindung, Kementrian Lingkungan Hidup dan Kehutanan: Jakarta, Indonesia, 2020; pp. 1–94.
- Matsumoto, J.; Perwitasari, T.; Setiawan, D.; Wishart, M.J. Water Resources Management. In Indonesia Public Expenditure Review, Spending for Better Results; The World Bank: Washington, DC, USA, 2020. [Google Scholar]
- Narendra, B.H.; Siregar, C.A.; Dharmawan, I.W.S.; Sukmana, A.; Pratiwi; Pramono, I.B.; Basuki, T.M.; Nugroho, H.Y.S.H.; Supangat, A.B.; Purwanto; et al. A Review on Sustainability of Watershed Management in Indonesia. Sustainability 2021, 13, 11125. [Google Scholar] [CrossRef]
Island | Area (km2) | Population | Water Availability (m3/s) | ||
---|---|---|---|---|---|
1995 1 | 2015 2 | 1996 * | 2003–2015 ** | ||
Java | 132,698.13 | 114,733.5 | 146,675.4 | 7360 | 5567 |
Sumatra | 472,849.20 | 40,830.3 | 56,119.3 | 32,198 | 23,026 |
Kalimantan | 534,912.09 | 10,470.8 | 16,301.3 | 28,369 | 25,126 |
Sulawesi | 185,150.03 | 13,732.4 | 18,973.3 | 9458 | 6470 |
Bali and Nusa Tenggara | 71,718.55 | 10,118.8 | 14,299.8 | 3251 | 1141 |
Maluku | 78,373.79 | 2,086,516 | 2901.4 | 4385 | 2575 |
Papua | 412,738.35 | 1,942,627 | 4100.8 | 32,754 | 24.350 |
Species | Reference |
---|---|
Ipomoea aquatica (water spinach) | [128,133] |
Momordia charantia (bitter groud) | [128,133] |
Stenochlaena pallustris (kelakai) | [128,130,133] |
Metroxylon sagoo (sagoo) | [128,133] |
Garcinia mangostana (mangosteen) | [128,133] |
Syzigium aqueum (water apple) | [133,136] |
Aleurites moluccana (candlenut) | [130,133] |
Ananas comosus (pineapple) | [128,130,136] |
Cucumis melo (sweet melon) | [130] |
Shorea app. (Illipe nut/Tengkawang) | [130] |
Salacca sp. (snake fruit) | [130] |
Nephelium lappaceum (rambootan) | [130,136] |
Local fish in beje (natural fish pond in Central Kalimantan) | [128] |
Baccaurea spp. (rambai/fruit) | [132] |
Mangifera spp (mango) | [132,136] |
Dimocarpus longan (longan) | [132,136] |
Sandoricum koetjape (Santol/fruit) | [132,134,137] |
Oncosperma tigillarium (nibung/spice) | [132,134] |
Cyperus rotundus (teki bulbs/spice) | [132,134] |
Garcinia morella (edible oil/fat) | [132,134] |
Canarium littorale (edible nut) | [132,134] |
Calophyllum inophyllum (nyamplung/bioenergy) | [135] |
Reutealis trisperma (Kemiri sunan/bioenergy) | [135] |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Nugroho, H.Y.S.H.; Indrawati, D.R.; Wahyuningrum, N.; Adi, R.N.; Supangat, A.B.; Indrajaya, Y.; Putra, P.B.; Cahyono, S.A.; Nugroho, A.W.; Basuki, T.M.; et al. Toward Water, Energy, and Food Security in Rural Indonesia: A Review. Water 2022, 14, 1645. https://doi.org/10.3390/w14101645
Nugroho HYSH, Indrawati DR, Wahyuningrum N, Adi RN, Supangat AB, Indrajaya Y, Putra PB, Cahyono SA, Nugroho AW, Basuki TM, et al. Toward Water, Energy, and Food Security in Rural Indonesia: A Review. Water. 2022; 14(10):1645. https://doi.org/10.3390/w14101645
Chicago/Turabian StyleNugroho, Hunggul Yudono Setio Hadi, Dewi Retna Indrawati, Nining Wahyuningrum, Rahardyan Nugroho Adi, Agung Budi Supangat, Yonky Indrajaya, Pamungkas Buana Putra, Sigit Andy Cahyono, Agung Wahyu Nugroho, Tyas Mutiara Basuki, and et al. 2022. "Toward Water, Energy, and Food Security in Rural Indonesia: A Review" Water 14, no. 10: 1645. https://doi.org/10.3390/w14101645
APA StyleNugroho, H. Y. S. H., Indrawati, D. R., Wahyuningrum, N., Adi, R. N., Supangat, A. B., Indrajaya, Y., Putra, P. B., Cahyono, S. A., Nugroho, A. W., Basuki, T. M., Savitri, E., Yuwati, T. W., Narendra, B. H., Sallata, M. K., Allo, M. K., Bisjoe, A. R., Muin, N., Isnan, W., Ansari, F., ... Hani, A. (2022). Toward Water, Energy, and Food Security in Rural Indonesia: A Review. Water, 14(10), 1645. https://doi.org/10.3390/w14101645