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Directed Technical Change for Green Economy: The Role of Innovation and Technology Spillovers

Yıl 2025, Cilt: 9 Sayı: 1, 53 - 70, 25.02.2025
https://doi.org/10.25295/fsecon.1510317

Öz

This paper reviews the models of directed technical change in the environmental context, both theoretically and empirically, with a specific emphasis on cross-sector technology spillovers. It is well-established that the direction of technological change is not uniform across production factors and does not progress neutrally. The objective is to assess whether empirical literature aligns with the theoretical insights of the model. Also, we aim to determine whether cross-sector technology spillovers impact the direction of innovations through changes in relative productivity levels during the transition process to a low-carbon economy. Our review suggests that the empirical literature is mainly expanding with research on energy types, cost, and efficiency measures and directed innovations in clean technologies are responsive to environmental policy. A limited number of studies reveal the significant impact of spillovers in directed technical change models, contributing to the advancement of clean energy and the fight against climate change. Overall, the interplay between cross-sector technology spillovers and environmental policies promoting green innovation may provide valuable insights into efforts to fight against climate change.

Kaynakça

  • Acemoglu, D. & Akcigit, U. (2012). Intellectual property rights policy, competition and innovation. Journal of the European Economic Association, 10(1), 1-42.
  • Acemoglu, D. (1998). Why do new technologies complement skills? Directed technical change and wage inequality. The Quarterly Journal of Economics, 113(4), 1055-1089. https://doi.org/10.1162/003355398555838
  • Acemoglu, D. (2002). Directed technical change. The Review of Economic Studies, 69(4), 781-809. https://doi.org/10.1111/1467-937X.00226
  • Acemoglu, D., Aghion, P., Barrage, L. & Hemous, D. (2023). Climate change, directed innovation, and energy transition: The long-run consequences of the shale gas revolution (No. w31657). National Bureau of Economic Research. 10.3386/w31657
  • Acemoglu, D., Aghion, P., Bursztyn, L. & Hemous, D. (2012). The environment and directed technical change. American Economic Review, 102(1), 131-166.
  • Afonso, O. & Forte, R. (2023). How powerful are fiscal and monetary policies in a directed technical change model with humans and robots?. International Journal of Finance & Economics, 28(3), 3008-3032. https://doi.org/10.1002/ijfe.2581
  • Aghion, P. & Howitt, P. (1990). A model of growth through creative destruction. NBER Working Paper, 3223. 10.3386/w3223
  • Andre, F. J. & Smulders, S. (2014). Fueling growth when oil peaks: Directed technological change and the limits to efficiency. European Economic Review, 69, 18-39. https://doi.org/10.1016/j.euroecorev.2013.10.007
  • Antonelli, C. & Scellato, G. (2019). Wage inequality and directed technological change: implications for income distribution. Technological Forecasting and Social Change, 141, 59-65. https://doi.org/10.1016/j.techfore.2019.01.016
  • Arrow, K. J. (1972). Economic welfare and the allocation of resources for invention. Springer.
  • Berman, E., Bound, J. & Griliches, Z. (1994). Changes in the demand for skilled labor within US manufacturing: Evidence from the annual survey of manufacturers. The Quarterly Journal of Economics, 109(2), 367-397.
  • Caballero, R. J. & Jaffe, A. B. (1993). How high are the giants’ shoulders: An empirical assessment of knowledge spillovers and creative destruction in a model of economic growth. NBER Macroeconomics Annual, 8, 15-74. https://doi.org/10.1086/654207
  • Casey, G. (2024). Energy efficiency and directed technical change: Implications for climate change mitigation. Review of Economic Studies, 91(1), 192-228. https://doi.org/10.1093/restud/rdad001
  • Chu, A. C., Cozzi, G. & Furukawa, Y. (2014). Labor unions, directed technical change and cross-country income inequality. No. 58886, University Library of Munich, Germany.
  • Dechezlepretre, A., Martin, R. F. & Mohnen, M. (2014). Knowledge spillovers from clean and dirty technologies. Centre for Economic Performance.
  • Donald, E. (2023). Forthcoming. spillovers and the direction of innovation: An application to the clean energy transition.
  • Durmaz, T. & Schroyen, F. (2020). Evaluating carbon capture and storage in a climate model with endogenous technical change. Climate Change Economics, 11(01), 2050003. https://doi.org/10.1142/S2010007820500037
  • Fernandez, A. M., Ferrandiz, E. & Medina, J. (2022). The diffusion of energy technologies: Evidence from renewable, fossil, and nuclear energy patents. Technological Forecasting and Social Change, 178, 121566. https://doi.org/10.1016/j.techfore.2022.121566
  • Fried, S. (2018). Climate policy and innovation: A quantitative macroeconomic analysis. American Economic Journal: Macroeconomics, 10(1), 90-118. 10.1257/mac.20150289
  • Goldin, C. & Katz, L. F. (1996). Technology, skill, and the wage structure: Insights from the past. The American Economic Review, 86(2), 252-257.
  • Greaker, M., Heggedal, T. & Rosendahl, K. E. (2018). Environmental policy and the direction of technical change. The Scandinavian Journal of Economics, 120(4), 1100-1138. https://doi.org/10.1111/sjoe.12254
  • Haas, C. & Kempa K. (2018). Directed technical change and energy intensity dynamics: Structural change vs. energy efficiency. The Energy Journal, 39(4), 127-151. https://doi.org/10.5547/01956574.39.4.chaa
  • Hemous, D. & Olsen, M. (2021). Directed technical change in labor and environmental economics. Annual Review of Economics, 13, 571-597. https://doi.org/10.1146/annurev-economics-092120-044327
  • Hemous, D. (2012). The dynamic impact of unilateral environmental policies. Journal of International Economics, 103, 80-95. https://doi.org/10.1016/j.jinteco.2016.09.001
  • Hou, G. & Song, H. (2022). Whether the directed technical change promotes the improvement of the energy structure in China. Frontiers in Environmental Science, 10, 928239. https://doi.org/10.3389/fenvs.2022.928239
  • Hou, Z., Roseta-Palma, C. & Ramalho, J. J. S. (2020). Directed technological change, energy and more: A modern story. Environment and Development Economics, 25(6), 611-633. https://doi.org/10.1017/S1355770X2000008X
  • Jaffe, A. B. (1986). Technological opportunity and spillovers of R&D: Evidence from firms’ patents, profits and market value. Working Paper 1815. 10.3386/w1815
  • Jee, S. J. & Srivastav, S. (2022). Knowledge spillovers between clean and dirty technologies. SSRN 4233536. http://dx.doi.org/10.2139/ssrn.4233536
  • Jerzmanowski, M. & Tamura, R. (2019). Directed technological change & cross-country income differences: A quantitative analysis. Journal of Development Economics, 141, 102372. https://doi.org/10.1016/j.jdeveco.2019.102372
  • Keller, W. & Yeaple, S. R. (2009). Multinational enterprises, international trade, and productivity growth: Firm-level evidence from the United States. The Review of Economics and Statistics, 91(4), 821-831. https://doi.org/10.1162/rest.91.4.821
  • Keller, W. (2004). International technology diffusion. Journal of Economic Literature, 42(3), 752-782. 10.1257/0022051042177685
  • Kim, M. (2019). International trade and directed technical change in developing countries. Journal of Economic Policy, 41(3), 77-96.
  • Kruse-Andersen, P. K. (2023). Directed technical change, environmental sustainability, and population growth. Journal of Environmental Economics and Management, 122, 102885. https://doi.org/10.1016/j.jeem.2023.102885
  • Lanzi, E. & Wing, I. S. (2011). Directed technical change in the energy sector: an empirical test of induced directed innovation. WCERE 2010 Conference, mimeo.
  • Lennox, J. A. & Witajewski-Baltvilks, J. (2017). Directed technical change with capital-embodied technologies: Implications for climate policy. Energy Economics, 67, 400-409. https://doi.org/10.1016/j.eneco.2017.08.005
  • Li, S., Pan, S. & Chi, S. (2016). North-south FDI and directed technical change. Economic Modelling, 59, 425-435. https://doi.org/10.1016/j.econmod.2016.08.008
  • Nordhaus, W. D. (2010). Modeling induced innovation in climate-change policy. Technological Change and The Environment, 182-209. Routledge.
  • Ocampo-Corrales, D. B., Moreno, R. & Surinach, R. (2021). Knowledge flows and technologies in renewable energies at the regional level in Europe. Regional Studies, 55(3), 521-532. https://doi.org/10.1080/00343404.2020.1807489
  • Perlin, J. (1999). From space to earth: The story of solar electricity. Earthscan.
  • Romer, P. M. (1986). Increasing returns and long-run growth. Journal of Political Economy 94(5), 1002-1037. https://doi.org/10.1086/261420
  • Romer, P. M. (1990). Endogenous technological change. Journal of Political Economy, 98(5, Part 2), 71-102. https://doi.org/10.1086/261725
  • Stern, N. (2009). A blueprint for a safer planet: How to manage climate change and create a new era of progress and prosperity. Random House.
  • Tsangyao, C., Chen, S. & Wang, M. (2024). Using Bootstrap fourier granger causality test in quantiles to re-examine pollution haven/halo hypotheses in China and G3 countries. Panoeconomicus, January, 1-22. https://doi.org/10.2298/PAN220609002C.
  • Van den Bijgaart, I. (2017). The unilateral implementation of a sustainable growth path with directed technical change. European Economic Review, 91, 305-327. https://doi.org/10.1016/j.euroecorev.2016.10.005
  • Witajewski-Baltvilks, J., Verdolini, E. & Tavoni, M. (2017). Induced technological change and energy efficiency improvements. Energy Economics, 68, 17-32. https://doi.org/10.1016/j.eneco.2017.10.032
  • Yang, J., Li, X. & Huang, S. (2020). Impacts on environmental quality and required environmental regulation adjustments: A perspective of directed technical change driven by big data. Journal of Cleaner Production, 275, 124126. https://doi.org/10.1016/j.jclepro.2020.124126
  • Zhou, X., Pan Z., Shahbaz, M. & Song, M. (2020). Directed technological progress driven by diversified industrial structural change. Structural Change and Economic Dynamics, 54, 112-129. https://doi.org/10.1016/j.strueco.2020.04.013

Yeşil Ekonomi İçin Yönlendirilmiş Teknolojik Değişme: İnovasyon ve Teknoloji Yayılımlarının Rolü

Yıl 2025, Cilt: 9 Sayı: 1, 53 - 70, 25.02.2025
https://doi.org/10.25295/fsecon.1510317

Öz

Bu çalışma, sektörler arası teknoloji yayılımlarına vurgu yaparak, çevresel bağlamdaki yönlendirilmiş teknik değişim modellerini teorik ve ampirik yönden incelemektedir. Teknolojik değişimin yönünün üretim faktörleri arasında tekdüze olmadığı ve tarafsız ilerlemediği bilinmektedir. Çalışmanın amacı, (i) ampirik literatürün modelin teorik içgörüleriyle uyumlu olup olmadığını değerlendirmektir. Ayrıca düşük karbonlu bir ekonomiye geçiş sürecinde sektörler arası teknoloji yayılımlarının, göreli verimlilik seviyelerindeki değişiklikler yoluyla inovasyonların yönünü etkileyip etkilemediği araştırılmaktadır. İncelememiz, ampirik literatürün çoğunlukla enerji türleri, maliyet ve verimlilik ölçümleri üzerine araştırmalarla genişlediğini ve temiz teknolojilerdeki yönlendirilmiş inovasyonların çevre politikasına duyarlı olduğunu göstermektedir. Sınırlı sayıda çalışmanın ise, yönlendirilmiş teknik değişim modellerinde teknolojik yayılımların önemli etkisini ortaya koyarak, temiz enerjinin ilerlemesine ve iklim değişikliğiyle mücadeleye katkıda bulunduğunu ortaya konmuştur. Genel olarak, yeşil inovasyonu teşvik etmeyi amaçlayan sektörler arası teknoloji yayılımları ve çevre politikaları arasındaki etkileşim, iklim değişikliğiyle mücadele çabalarına önemli katkılar sağlayabilir.

Kaynakça

  • Acemoglu, D. & Akcigit, U. (2012). Intellectual property rights policy, competition and innovation. Journal of the European Economic Association, 10(1), 1-42.
  • Acemoglu, D. (1998). Why do new technologies complement skills? Directed technical change and wage inequality. The Quarterly Journal of Economics, 113(4), 1055-1089. https://doi.org/10.1162/003355398555838
  • Acemoglu, D. (2002). Directed technical change. The Review of Economic Studies, 69(4), 781-809. https://doi.org/10.1111/1467-937X.00226
  • Acemoglu, D., Aghion, P., Barrage, L. & Hemous, D. (2023). Climate change, directed innovation, and energy transition: The long-run consequences of the shale gas revolution (No. w31657). National Bureau of Economic Research. 10.3386/w31657
  • Acemoglu, D., Aghion, P., Bursztyn, L. & Hemous, D. (2012). The environment and directed technical change. American Economic Review, 102(1), 131-166.
  • Afonso, O. & Forte, R. (2023). How powerful are fiscal and monetary policies in a directed technical change model with humans and robots?. International Journal of Finance & Economics, 28(3), 3008-3032. https://doi.org/10.1002/ijfe.2581
  • Aghion, P. & Howitt, P. (1990). A model of growth through creative destruction. NBER Working Paper, 3223. 10.3386/w3223
  • Andre, F. J. & Smulders, S. (2014). Fueling growth when oil peaks: Directed technological change and the limits to efficiency. European Economic Review, 69, 18-39. https://doi.org/10.1016/j.euroecorev.2013.10.007
  • Antonelli, C. & Scellato, G. (2019). Wage inequality and directed technological change: implications for income distribution. Technological Forecasting and Social Change, 141, 59-65. https://doi.org/10.1016/j.techfore.2019.01.016
  • Arrow, K. J. (1972). Economic welfare and the allocation of resources for invention. Springer.
  • Berman, E., Bound, J. & Griliches, Z. (1994). Changes in the demand for skilled labor within US manufacturing: Evidence from the annual survey of manufacturers. The Quarterly Journal of Economics, 109(2), 367-397.
  • Caballero, R. J. & Jaffe, A. B. (1993). How high are the giants’ shoulders: An empirical assessment of knowledge spillovers and creative destruction in a model of economic growth. NBER Macroeconomics Annual, 8, 15-74. https://doi.org/10.1086/654207
  • Casey, G. (2024). Energy efficiency and directed technical change: Implications for climate change mitigation. Review of Economic Studies, 91(1), 192-228. https://doi.org/10.1093/restud/rdad001
  • Chu, A. C., Cozzi, G. & Furukawa, Y. (2014). Labor unions, directed technical change and cross-country income inequality. No. 58886, University Library of Munich, Germany.
  • Dechezlepretre, A., Martin, R. F. & Mohnen, M. (2014). Knowledge spillovers from clean and dirty technologies. Centre for Economic Performance.
  • Donald, E. (2023). Forthcoming. spillovers and the direction of innovation: An application to the clean energy transition.
  • Durmaz, T. & Schroyen, F. (2020). Evaluating carbon capture and storage in a climate model with endogenous technical change. Climate Change Economics, 11(01), 2050003. https://doi.org/10.1142/S2010007820500037
  • Fernandez, A. M., Ferrandiz, E. & Medina, J. (2022). The diffusion of energy technologies: Evidence from renewable, fossil, and nuclear energy patents. Technological Forecasting and Social Change, 178, 121566. https://doi.org/10.1016/j.techfore.2022.121566
  • Fried, S. (2018). Climate policy and innovation: A quantitative macroeconomic analysis. American Economic Journal: Macroeconomics, 10(1), 90-118. 10.1257/mac.20150289
  • Goldin, C. & Katz, L. F. (1996). Technology, skill, and the wage structure: Insights from the past. The American Economic Review, 86(2), 252-257.
  • Greaker, M., Heggedal, T. & Rosendahl, K. E. (2018). Environmental policy and the direction of technical change. The Scandinavian Journal of Economics, 120(4), 1100-1138. https://doi.org/10.1111/sjoe.12254
  • Haas, C. & Kempa K. (2018). Directed technical change and energy intensity dynamics: Structural change vs. energy efficiency. The Energy Journal, 39(4), 127-151. https://doi.org/10.5547/01956574.39.4.chaa
  • Hemous, D. & Olsen, M. (2021). Directed technical change in labor and environmental economics. Annual Review of Economics, 13, 571-597. https://doi.org/10.1146/annurev-economics-092120-044327
  • Hemous, D. (2012). The dynamic impact of unilateral environmental policies. Journal of International Economics, 103, 80-95. https://doi.org/10.1016/j.jinteco.2016.09.001
  • Hou, G. & Song, H. (2022). Whether the directed technical change promotes the improvement of the energy structure in China. Frontiers in Environmental Science, 10, 928239. https://doi.org/10.3389/fenvs.2022.928239
  • Hou, Z., Roseta-Palma, C. & Ramalho, J. J. S. (2020). Directed technological change, energy and more: A modern story. Environment and Development Economics, 25(6), 611-633. https://doi.org/10.1017/S1355770X2000008X
  • Jaffe, A. B. (1986). Technological opportunity and spillovers of R&D: Evidence from firms’ patents, profits and market value. Working Paper 1815. 10.3386/w1815
  • Jee, S. J. & Srivastav, S. (2022). Knowledge spillovers between clean and dirty technologies. SSRN 4233536. http://dx.doi.org/10.2139/ssrn.4233536
  • Jerzmanowski, M. & Tamura, R. (2019). Directed technological change & cross-country income differences: A quantitative analysis. Journal of Development Economics, 141, 102372. https://doi.org/10.1016/j.jdeveco.2019.102372
  • Keller, W. & Yeaple, S. R. (2009). Multinational enterprises, international trade, and productivity growth: Firm-level evidence from the United States. The Review of Economics and Statistics, 91(4), 821-831. https://doi.org/10.1162/rest.91.4.821
  • Keller, W. (2004). International technology diffusion. Journal of Economic Literature, 42(3), 752-782. 10.1257/0022051042177685
  • Kim, M. (2019). International trade and directed technical change in developing countries. Journal of Economic Policy, 41(3), 77-96.
  • Kruse-Andersen, P. K. (2023). Directed technical change, environmental sustainability, and population growth. Journal of Environmental Economics and Management, 122, 102885. https://doi.org/10.1016/j.jeem.2023.102885
  • Lanzi, E. & Wing, I. S. (2011). Directed technical change in the energy sector: an empirical test of induced directed innovation. WCERE 2010 Conference, mimeo.
  • Lennox, J. A. & Witajewski-Baltvilks, J. (2017). Directed technical change with capital-embodied technologies: Implications for climate policy. Energy Economics, 67, 400-409. https://doi.org/10.1016/j.eneco.2017.08.005
  • Li, S., Pan, S. & Chi, S. (2016). North-south FDI and directed technical change. Economic Modelling, 59, 425-435. https://doi.org/10.1016/j.econmod.2016.08.008
  • Nordhaus, W. D. (2010). Modeling induced innovation in climate-change policy. Technological Change and The Environment, 182-209. Routledge.
  • Ocampo-Corrales, D. B., Moreno, R. & Surinach, R. (2021). Knowledge flows and technologies in renewable energies at the regional level in Europe. Regional Studies, 55(3), 521-532. https://doi.org/10.1080/00343404.2020.1807489
  • Perlin, J. (1999). From space to earth: The story of solar electricity. Earthscan.
  • Romer, P. M. (1986). Increasing returns and long-run growth. Journal of Political Economy 94(5), 1002-1037. https://doi.org/10.1086/261420
  • Romer, P. M. (1990). Endogenous technological change. Journal of Political Economy, 98(5, Part 2), 71-102. https://doi.org/10.1086/261725
  • Stern, N. (2009). A blueprint for a safer planet: How to manage climate change and create a new era of progress and prosperity. Random House.
  • Tsangyao, C., Chen, S. & Wang, M. (2024). Using Bootstrap fourier granger causality test in quantiles to re-examine pollution haven/halo hypotheses in China and G3 countries. Panoeconomicus, January, 1-22. https://doi.org/10.2298/PAN220609002C.
  • Van den Bijgaart, I. (2017). The unilateral implementation of a sustainable growth path with directed technical change. European Economic Review, 91, 305-327. https://doi.org/10.1016/j.euroecorev.2016.10.005
  • Witajewski-Baltvilks, J., Verdolini, E. & Tavoni, M. (2017). Induced technological change and energy efficiency improvements. Energy Economics, 68, 17-32. https://doi.org/10.1016/j.eneco.2017.10.032
  • Yang, J., Li, X. & Huang, S. (2020). Impacts on environmental quality and required environmental regulation adjustments: A perspective of directed technical change driven by big data. Journal of Cleaner Production, 275, 124126. https://doi.org/10.1016/j.jclepro.2020.124126
  • Zhou, X., Pan Z., Shahbaz, M. & Song, M. (2020). Directed technological progress driven by diversified industrial structural change. Structural Change and Economic Dynamics, 54, 112-129. https://doi.org/10.1016/j.strueco.2020.04.013
Toplam 47 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Çevre Ekonomisi, Doğal Kaynaklar Ekonomisi, Çevre Politikası
Bölüm Makaleler
Yazarlar

Bilal Çayır 0000-0001-5340-6635

Yayımlanma Tarihi 25 Şubat 2025
Gönderilme Tarihi 4 Temmuz 2024
Kabul Tarihi 25 Ağustos 2024
Yayımlandığı Sayı Yıl 2025 Cilt: 9 Sayı: 1

Kaynak Göster

APA Çayır, B. (2025). Directed Technical Change for Green Economy: The Role of Innovation and Technology Spillovers. Fiscaoeconomia, 9(1), 53-70. https://doi.org/10.25295/fsecon.1510317

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