📚 Photosynthesis | 光合作用
Photosynthesis is the process by which green plants, algae, and some bacteria convert light energy into chemical energy stored in glucose. It is the foundation of almost all food chains and provides the oxygen we breathe.
光合作用是绿色植物、藻类和一些细菌将光能转化为储存在葡萄糖中化学能的过程。它几乎是所有食物链的基础,并为我们提供呼吸所需的氧气。
1. What is Photosynthesis? | 什么是光合作用?
Photosynthesis takes place in the chloroplasts of plant cells, especially in the leaf mesophyll. Chlorophyll, the green pigment in chloroplasts, absorbs light energy and uses it to drive the reaction between carbon dioxide and water.
光合作用发生在植物细胞的叶绿体中,尤其是叶肉组织中的细胞。叶绿体中的绿色色素——叶绿素,吸收光能并利用它将二氧化碳和水转化为有机物。
The process produces glucose and oxygen. Glucose is used for respiration or stored as starch, while oxygen diffuses out of the leaf as a waste product.
这个过程产生葡萄糖和氧气。葡萄糖用于呼吸作用或储存为淀粉,而氧气作为副产物通过叶片扩散出去。
2. Word Equation and Chemical Equation | 文字方程式和化学方程式
The overall word equation for photosynthesis is:
Carbon dioxide + Water → Glucose + Oxygen
光合作用的总体文字方程式为:
二氧化碳 + 水 → 葡萄糖 + 氧气
The balanced chemical equation is:
6CO₂ + 6H₂O → C₆H₁₂O₆ + 6O₂
配平的化学方程式为:
6CO₂ + 6H₂O → C₆H₁₂O₆ + 6O₂
Light energy is absorbed by chlorophyll and drives this endothermic reaction. The energy is stored in the chemical bonds of glucose.
光能被叶绿素吸收并驱动这个吸热反应。能量储存在葡萄糖的化学键中。
3. Requirements for Photosynthesis | 光合作用的条件
For photosynthesis to occur, the following conditions must be present:
光合作用的发生需要以下条件:
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Light energy – absorbed by chlorophyll, provides the energy to combine carbon dioxide and water.
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Carbon dioxide – enters the leaf through stomata by diffusion.
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Water – absorbed by roots from the soil and transported to leaves via xylem.
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Chlorophyll – the green pigment located in chloroplasts that captures light energy.
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Suitable temperature – enzymes involved in photosynthesis work best at an optimum temperature (around 25–35 °C for most plants).
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光能——被叶绿素吸收,为二氧化碳和水的结合提供能量。
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二氧化碳——通过气孔扩散进入叶片。
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水——由根从土壤中吸收,通过木质部运送到叶片。
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叶绿素——位于叶绿体中的绿色色素,负责捕获光能。
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适宜的温度——参与光合作用的酶在适宜温度(大多数植物约为25–35 °C)下活性最高。
4. Leaf Adaptations | 叶片的适应性
Leaves are well adapted for efficient photosynthesis. Their broad, flat shape provides a large surface area to absorb light.
叶片的结构高度适应高效的光合作用。其宽扁的形状提供了巨大的表面积以吸收光线。
Key adaptations include:
关键的适应性包括:
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Thin structure – short diffusion distance for gases.
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Chloroplasts – concentrated in palisade mesophyll cells near the upper surface.
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Stomata – allow CO₂ in and O₂ out, also control water loss.
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Vascular bundles (xylem and phloem) – transport water to the leaf and glucose away.
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Transparent epidermis – lets light penetrate to the photosynthetic cells below.
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薄的叶片结构——缩短气体扩散的距离。
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叶绿体——集中在靠近上表皮的栅栏叶肉细胞中。
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气孔——允许CO₂进入和O₂排出,同时调节水分散失。
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维管束(木质部和韧皮部)——将水输送到叶片,并将葡萄糖运走。
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透明的表皮——让光线穿透到下方的光合作用细胞。
5. Light Intensity, CO₂ Concentration and Temperature | 光照强度、二氧化碳浓度和温度
These three environmental factors directly affect the rate of photosynthesis. They are known as limiting factors.
这三个环境因素直接影响光合作用速率,被称为限制因素。
As light intensity increases, the rate of photosynthesis rises initially, but only up to a certain point. Beyond that point, further increases in light have no effect because another factor is limiting.
随着光照强度增加,光合作用速率起初上升,但只到一定程度。超过该点后,继续增加光照不再有影响,因为另一个因素成为限制因素。
Similarly, increasing CO₂ concentration boosts photosynthesis until a plateau is reached. Temperature affects enzyme activity: if it is too high, enzymes denature and photosynthesis stops.
同样,增加CO₂浓度会促进光合作用,直至达到平台期。温度影响酶的活性:如果温度过高,酶会变性,光合作用停止。
The table below shows typical effects:
下表显示了典型的影响:
| Factor | 因素 | Increase | 增加 | Decrease | 减少 |
|---|---|---|
| Light intensity 光照强度 |
Faster rate until limited by other factors 速率加快,直到受其他因素限制 |
Slower rate 速率减慢 |
| CO₂ concentration CO₂浓度 |
Faster rate up to saturation 速率加快,直至饱和 |
Slower rate due to lack of raw material 因原料不足而减慢 |
| Temperature 温度 |
Enzymes work faster up to optimum 酶活性增强直至最适温度 |
Below optimum enzymes slow; above optimum enzymes denature 低于最适温度酶活性降低;高于最适温度酶变性 |
6. Uses of Glucose | 葡萄糖的用途
Glucose produced during photosynthesis is used by plants in several ways:
光合作用产生的葡萄糖在植物体内有多种用途:
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Respiration – glucose is broken down to release energy for cell activities.
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Starch storage – glucose is converted into starch for storage in roots, stems, and leaves.
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Cellulose – glucose molecules join to form cellulose for cell walls.
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Amino acids – glucose combined with nitrate ions forms amino acids for protein synthesis.
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Fats and oils – glucose is converted into lipids for energy storage in seeds.
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呼吸作用——葡萄糖被分解,为细胞活动释放能量。
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储存为淀粉——葡萄糖转化为淀粉储存在根、茎和叶中。
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纤维素——葡萄糖分子连接形成纤维素,构成细胞壁。
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氨基酸——葡萄糖与硝酸根离子结合形成氨基酸,用于蛋白质合成。
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脂肪和油——葡萄糖转化为脂质,储存在种子中提供能量。
7. Rate of Photosynthesis and Limiting Factors | 光合作用速率和限制因素
A limiting factor is the factor that is in shortest supply. When it is increased, the rate of photosynthesis increases. If all factors are at an optimum, the rate reaches a maximum.
限制因素是指供应最不足的因素。当它被增加时,光合作用速率会随之提高。如果所有因素都处于最适状态,速率达到最大值。
Common exam questions ask you to interpret graphs of carbon dioxide uptake or oxygen release against light intensity. The initial steep slope shows an increasing rate; the plateau shows that another factor is limiting.
常见的考试题目要求解读CO₂吸收量或O₂释放量随光照强度变化的曲线。初始陡峭的斜率表示速率上升;平台期表示另一个因素成为限制因素。
Farmers and gardeners use this knowledge to enhance crop yield. In greenhouses, they can control light (using artificial lamps), CO₂ concentration (using paraffin heaters or CO₂ generators), and temperature (using heating or ventilation).
农民和园丁利用这一知识来提高作物产量。在温室中,他们可以控制光照(使用人工灯具)、CO₂浓度(使用石蜡燃烧器或CO₂发生器)和温度(使用加热或通风系统)。
8. Experiments to Investigate Photosynthesis | 探究光合作用的实验
The simplest way to measure the rate of photosynthesis is to count bubbles of oxygen produced by an aquatic plant, such as Elodea.
测量光合作用速率最简单的方法之一是计数水生植物(如伊乐藻)产生的氧气气泡数量。
A typical setup is shown below:
典型的实验装置如下:
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Place a cut shoot of Elodea in a beaker of water containing sodium bicarbonate (source of CO₂).
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Shine a lamp at a fixed distance, and count the bubbles per minute.
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Move the lamp closer or further away to change light intensity.
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Repeat and record results to plot a graph of bubbles per minute against distance.
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将切好的伊乐藻枝条放入含有碳酸氢钠(提供CO₂)的水烧杯中。
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将灯固定在某一距离照射,每分钟计数气泡数量。
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将灯移近或移远以改变光照强度。
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重复实验并记录结果,绘制气泡数/分钟与距离的关系曲线。
Another common experiment uses a leaf and iodine solution to test for starch. The leaf is destarched by keeping the plant in darkness for 48 hours, then partially covered with a shape, exposed to light, and finally tested with iodine. The exposed parts turn blue-black, showing starch was produced.
另一个常用实验是用叶片和碘液检测淀粉。先将植物置于黑暗中48小时使淀粉消耗殆尽,然后用不透光的形状部分遮盖叶片,再置于光照下,最后用碘液测试。曝光部分变成蓝黑色,表明产生了淀粉。
9. Photosynthesis and Respiration | 光合作用与呼吸作用
Photosynthesis and respiration are complementary processes. Photosynthesis removes carbon dioxide from the atmosphere and releases oxygen, while respiration uses oxygen and releases carbon dioxide.
光合作用和呼吸作用是互补的过程。光合作用从大气中吸收二氧化碳并释放氧气,而呼吸作用消耗氧气并释放二氧化碳。
During the day, photosynthesis usually occurs faster than respiration, so plants produce more oxygen than they consume. At night, photosynthesis stops, and only respiration takes place.
白天,光合作用通常快于呼吸作用,因此植物产生的氧气多于消耗的氧气。夜间,光合作用停止,只有呼吸作用进行。
In cells, photosynthesis takes place in chloroplasts, whereas respiration occurs in mitochondria. The chemical energy from glucose is released during aerobic respiration in the presence of oxygen.
在细胞中,光合作用发生在叶绿体中,而呼吸作用发生在线粒体中。葡萄糖中的化学能在有氧条件下通过有氧呼吸释放出来。
Understanding photosynthesis is essential for IGCSE Science, as it links plant structure, energy transfer, and practical investigation. Mastering the equations, limiting factors, and experimental methods will help you answer exam questions with confidence.
理解光合作用对IGCSE科学至关重要,因为它将植物结构、能量转换和实验探究联系在一起。掌握方程式、限制因素和实验方法,将帮助你自信地解答考试题目。
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