请问,半导体制冷是什么原理

2025-02-13 20:03:11
推荐回答(3个)
回答1:

半导体制冷器件的工作原理是基于帕尔帖原理,该效应是在1834年由J.A.C帕尔帖首先发现的,即利用当两种不同的导体A和B组成的电路且通有直流电时,在接头处除焦耳热以外还会释放出某种其它的热量,而另一个接头处则吸收热量,且帕尔帖效应所引起的这种现象是可逆的,改变电流方向时,放热和吸热的接头也随之改变,吸收和放出的热量与电流强度I[A]成正比,且与两种导体的性质及热端的温度有关,即:
Qab=Iπabπab称做导体A和B之间的相对帕尔帖系数
,单位为[V],
πab为正值时,表示吸热,反之为放热,由于吸放热是可逆的,所以πab=-πab帕尔帖系数的大小取决于构成闭合回路的材料的性质和接点温度,其数值可以由赛贝克系数αab[V.K-1]和接头处的绝对温度T[K]得出πab=αabT与塞贝克效应相,帕尔帖系也具有加和性,即:Qac=Qab+Qbc=(πab+πbc)I因此绝对帕尔帖系数有πab=πa-
πb金属材料的帕尔帖效应比较微弱,而半导体材料则要强得多,因而得到实际应用的温差电制冷器件都是由半导体材料制成的。制冷材料AVIoffe和AFIoffe指出,在同族元素或同种类型的化合物质间,晶格热导率Kp随着平均原子量A的增长呈下降趋势。RWKeyes通过实验推断出,KpT近似于Tm3/2ρ2/3A-7/6成比例,即近似与原子量A成正比,因此通常应选取由重元素组成的化合物作为半导体制冷材料。半导体制冷材料的另一个巨大发展是1956年由AFIoffe等提出的固溶体理论,即利用同晶化合物形成类质同晶的固溶体。固溶体中掺入同晶化合物引入的等价置换原子产生的短程畸变,使得声子散射增加,从而降低了晶格导热率,而对载流子迁移率的影响却很小,因此使得优值系数增大。例如50%Bi2Te3-50%Bi2Se3固溶体与Bi2Te3相比较,其热导率降低33%,而迁移率仅稍有增加,因而优值系数将提高50%到一倍。Ag(1-x)Cu(x)Ti
Te、Bi-Sb合金和YBaCuO超导材料等曾经成为半导体制冷学者的研究对象,并通过实验证明可以成为较好的低温制冷材料。下面将分别介绍这几种热电性能较好的半导体制冷材料。二元固溶体,无论是P型还是N型,晶格热导率均比Bi2Te3有较大降低,但N型材料的优值系数却提高很小,这可能是因为在Bi2Te3中引入Bi2Se3时,随着Bi2Se3摩尔含量的不同呈现出两种不同的导电特性,势必会使两种特性都不会很强,通过合适的掺杂虽可以增强材料的导电特性,提高材料的优值系数,但归根结底还是应该在本题物质上有所突破。

回答2:

回答3:

半导体致冷应用1834年发现的尔帖效应的原理,半导体内部有上百对对N型和P型的半导体材料(碲化铋)粒子,这个半导体元件在电路上是用串联形式连接组成.当一块N型半导体材料和一块P型半导体材料联结成电偶对,在这个电路中接通一个直流电源后,就能发生能量的转移,电流由N型元件流向P型元件的接头吸引热量,成为冷端;这就是冰包内部的制冷铝,电流由P型元件流向N型元件的接头释放热量,成为热端。所以半导体就会有一面冷一面热,半导体制冷片它要制冷,就必须要将热排走,否则就会低消制冷的效果。所以热端就要加散热铝和风扇来帮助散热。

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