This scientic publication in digital format is a continuation of the Printed Review: Legal Deposit pp 196802ZU42, ISSN 0378-7818.
Hao et al. Rev. Fac. Agron. (LUZ). 2025, 42(1): e254212
5-6 |
technology can eectively solve these problems by increasing
the specic gravity and hardness of seeds. Moreover, the coating
materials used are inexpensive, the process is simple, and it has no
adverse environmental impacts.
In 2015, Italy and Spain collectively accounted for approximately
75 % of the total rice-growing area, which was around half a million
ha (Kraehmer & Vidotto 2017). The practice of direct seeding in
saturated soil has become widely adopted in southern Brazil, Chile,
Venezuela, Cuba, various Caribbean nations, and specic regions of
Colombia (Muthuramu & Ragavan 2021). Particularly in Venezuela,
the use of pre-germinated systems for wet direct seeding dominates
rice cultivation (Singh et al., 2017). This provides a strong foundation
for promoting the application of iron-coated seeding technology in
wet direct seeding. With the continuous advancement in breeding
varieties suitable for direct seeding cultivation in dierent rice
production areas, Iron-coated direct seeding technology, as a
technique that can signicantly improve seedling emergence rates and
ensure yield, shows broad application prospects. The popularization
of this technology will undoubtedly bring new breakthroughs and
opportunities to the rice planting industry.
Conclusions
Iron-coated wet direct seeding technology provides several
advantages over traditional wet direct seeding methods, including
increased seed weight and hardness, which help mitigate issues like
seed drifting and damage from birds and rodents. These benets
contribute to more stable seedling establishment and potentially
higher yields. While some studies have reported yield reductions of
around 5% compared to conventional transplanting, the technology
holds the potential for yield parity or even improvement with further
renement and adaptation to local conditions. The cost-eectiveness
and simplicity of the coating process make this technology accessible
to a wide range of farmers, facilitating its broader adoption. Beyond
Japan, the technology shows great promise for other rice-producing
regions, particularly in Asia, Europe, and South America, where
similar challenges exist. With continued development, it could
play a pivotal role in modernizing rice cultivation while reducing
environmental footprints.
Funding source
University Student Science and Technology Innovation
and Entrepreneurship Training Program of Jilin Province
(SJ202411439007)
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