Soil, Fertilizer, and Plant Silicon Research in Japan

Ma, Jian Feng; Takahashi, Eiichi

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Table of contents
  • Cover
  • Prefacev
  • Table of Contentsvii
  • Chapter 1. Brief history of silicon research in Japan1
  • Chapter 2. Silicon sources for agriculture5
  • 2.1. Silicon supply for paddy rice from natural sources5
  • 2.2. Silicon supply from organic and inorganic fertilizers9
  • Chapter 3. Silicon in soil27
  • 3.1. Behavior of silicon in paddy soil27
  • 3.2. Estimating the silicon-supplying capacity of paddy soils30
  • 3.3. Environmental factors controlling the availability of silicon for rice plants in paddy soils44
  • 3.4. Balance sheet of silicon in paddy soil-past and present45
  • Chapter 4. Effect of silicate fertilizer application on paddy rice49
  • 4.1. Criteria for predicting silicate fertilizer requirement for paddy rice49
  • 4.2. Field experiments on the effects of silicate fertilizer application52
  • 4.3. Effect of calcium in slags on silicon uptake by rice59
  • Chapter 5. Silicon-accumulating plants in the plant kingdom63
  • 5.1. Criteria for discriminating Si-accumulating plants from non-accumulating plants63
  • 5.2. Characteristics of silicon accumulators and their distribution in plant kingdom64
  • 5.3. Variety difference in silicon content in the Si-accumulating and intermediate-type species69
  • Chapter 6. Silicon uptake and accumulation in plants73
  • 6.1. Three modes of uptake for silicon73
  • 6.2. Characteristics of Si uptake by rice76
  • 6.3. Roles of root hairs and lateral roots in silicon uptake88
  • 6.4. Genotypical difference in silicon uptake88
  • 6.5. A rice mutant defective in silicon uptake90
  • 6.6. Similar mode of uptake for silicon and germanium93
  • 6.7. Chemical form and accumulation process of silicon in rice100
  • Chapter 7. Functions of silicon in plant growth107
  • 7.1. Beneficial effects of silicon on plant growth107
  • 7.2. Functions of silicon146
  • 7.3. Working process of beneficial effects of silicon on plant growth179
  • Chapter 8 Summary and prospect of silicon research181
  • 8.1. Major achievements and prospect of research on silicon in soil181
  • 8.2. Major achievements and prospect of research on silicon fertilizer183
  • 8.3. Major achievements and prospect of research on silicon in plants184
  • Chapter 9 Silicon research in the world191
  • 9.1. Effect of silicon on crop production191
  • 9.2. Role of silicon in disease and pest control195
  • 9.3. Alleviative effect of silicon on abiotic stresses198
  • Appendix201
  • Appendix 1. SiO2 concentration of 380 river waters201
  • Appendix 2. Survey on SiO2 contents in flag leaf of rice plants203
  • Appendix 3. Si content of vascular plants205
  • Appendix 4. Si content of barley grain235
  • References257
  • Index275
Book details
  • Vendor Elsevier S & T
  • SKU 9780444511669
  • ISBN-13 9780080525761
  • Author Ma, Jian Feng; Takahashi, Eiichi
  • Category Science
  • Subject Botany

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Silicon (Si) plays a significant role in the resistance of plants to multiple stresses including biotic and abiotic stresses. Silicon is also the only element that does not damage plants when accumulated in excess. However, the contribution of Si to plant growth has been largely ignored due to its universal existence in the earth's crust. From numerous intensive studies on Si, initiated in Japan about 80 years ago, Japanese scientists realized that Si was important for the healthy growth of rice and for stability of rice production. In a worldwide first, silicon was recognized as a valuable fertilizer in Japan. The beneficial effects of Si on rice growth in particular, are largely attributable to the characteristics of a silica gel that is accumulated on the epidermal tissues in rice. These effects are expressed most clearly under high-density cultivation systems with heavy applications of nitrogen. Si is therefore recognized now as an ''agronomically essential element'' in Japan.

Recently, Si has become globally important because it generates resistance in many plants to diseases and pests, and may contribute to reduced rates of application of pesticides and fungicides. Silicon is also now considered as an environment-friendly element. The achievements of Si research in Japan are introduced in this book, in relation to soils, fertilizers and plant nutrition.