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Study on the Technological Inductive Effects of Product Information Label: Evidence From the Energy-Efficiency Labeling System in China

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  • Yuanyuan Gong
  • Zhangsheng Liu
  • Shuangyin Wu
  • Shuhui Pu
  • Xiaolu Zhang
  • Lingkun Chen

Abstract

Under the dual goals of achieving carbon peak and carbon neutralization, it is of great practical significance to explore the impact of product information labeling on technological innovation. As an essential element in improving energy performance in consumer products, energy-efficiency labels (EEL) have played a vital role in the government’s portfolio of energy-efficiency improvement, technological progress, and carbon emission mitigation. We estimate the extent of the inductive effects of varying patent types on the relationship between the EEL system and technological innovation in a panel differences-in-differences framework based on the panel data of energy-saving patents and electricity-saving patents from 1998 to 2013 in China. Results indicate that the EEL system helps firms improve the ratio of energy-saving and electricity-saving patents to water-saving patents, and the rate of energy-saving and electricity-saving patents to all patents in the region. In another word, the EEL has a significant directed technological inducing effect. As for the role of the heterogeneity of patent types, the positive effects of the EEL system on invention patents are significantly suppressed in patent-for-utility models. Thus, it is suggested to improve the existing EEL system, gradually expand the product coverage of the EEL system, and increase the protection scope of utility model patents for achieving technological progress and sustainable development of society.

Suggested Citation

  • Yuanyuan Gong & Zhangsheng Liu & Shuangyin Wu & Shuhui Pu & Xiaolu Zhang & Lingkun Chen, 2023. "Study on the Technological Inductive Effects of Product Information Label: Evidence From the Energy-Efficiency Labeling System in China," SAGE Open, , vol. 13(3), pages 21582440231, August.
  • Handle: RePEc:sae:sagope:v:13:y:2023:i:3:p:21582440231194141
    DOI: 10.1177/21582440231194141
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    1. Daron Acemoglu & Philippe Aghion & Leonardo Bursztyn & David Hemous, 2012. "The Environment and Directed Technical Change," American Economic Review, American Economic Association, vol. 102(1), pages 131-166, February.
    2. Philippe Aghion & Antoine Dechezleprêtre & David Hémous & Ralf Martin & John Van Reenen, 2016. "Carbon Taxes, Path Dependency, and Directed Technical Change: Evidence from the Auto Industry," Journal of Political Economy, University of Chicago Press, vol. 124(1), pages 1-51.
    3. Zhang, Yixiang & Li, Juan & Tao, Wenwen, 2021. "Does energy efficiency affect appliance prices? Empirical analysis of air conditioners in China based on propensity score matching," Energy Economics, Elsevier, vol. 101(C).
    4. Nick Johnstone & Ivan Haščič & David Popp, 2010. "Renewable Energy Policies and Technological Innovation: Evidence Based on Patent Counts," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 45(1), pages 133-155, January.
    5. Galeotti, Marzio & Salini, Silvia & Verdolini, Elena, 2020. "Measuring environmental policy stringency: Approaches, validity, and impact on environmental innovation and energy efficiency," Energy Policy, Elsevier, vol. 136(C).
    6. Tao, Jing & Yu, Suiran, 2011. "Implementation of energy efficiency standards of household refrigerator/freezer in China: Potential environmental and economic impacts," Applied Energy, Elsevier, vol. 88(5), pages 1890-1905, May.
    7. Raphael Calel & Antoine Dechezleprêtre, 2016. "Environmental Policy and Directed Technological Change: Evidence from the European Carbon Market," The Review of Economics and Statistics, MIT Press, vol. 98(1), pages 173-191, March.
    8. Zhuanlan Sun & Demi Zhu, 2023. "Investigating environmental regulation effects on technological innovation: A meta-regression analysis," Energy & Environment, , vol. 34(3), pages 463-492, May.
    9. Stadelmann, Marcel & Schubert, Renate, 2018. "How Do Different Designs of Energy Labels Influence Purchases of Household Appliances? A Field Study in Switzerland," Ecological Economics, Elsevier, vol. 144(C), pages 112-123.
    10. Richard G. Newell & Adam B. Jaffe & Robert N. Stavins, 1999. "The Induced Innovation Hypothesis and Energy-Saving Technological Change," The Quarterly Journal of Economics, President and Fellows of Harvard College, vol. 114(3), pages 941-975.
    11. Kim, Yee Kyoung & Lee, Keun & Park, Walter G. & Choo, Kineung, 2012. "Appropriate intellectual property protection and economic growth in countries at different levels of development," Research Policy, Elsevier, vol. 41(2), pages 358-375.
    12. Kenneth Gillingham & Richard G. Newell & Karen Palmer, 2009. "Energy Efficiency Economics and Policy," Annual Review of Resource Economics, Annual Reviews, vol. 1(1), pages 597-620, September.
    13. Katarzyna Stasiuk & Dominika Maison, 2022. "The Influence of New and Old Energy Labels on Consumer Judgements and Decisions about Household Appliances," Energies, MDPI, vol. 15(4), pages 1-13, February.
    14. Albrizio, Silvia & Kozluk, Tomasz & Zipperer, Vera, 2017. "Environmental policies and productivity growth: Evidence across industries and firms," Journal of Environmental Economics and Management, Elsevier, vol. 81(C), pages 209-226.
    15. Noailly, Joëlle & Batrakova, Svetlana, 2010. "Stimulating energy-efficient innovations in the Dutch building sector: Empirical evidence from patent counts and policy lessons," Energy Policy, Elsevier, vol. 38(12), pages 7803-7817, December.
    16. Lindman, Åsa & Söderholm, Patrik, 2016. "Wind energy and green economy in Europe: Measuring policy-induced innovation using patent data," Applied Energy, Elsevier, vol. 179(C), pages 1351-1359.
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