用频率为n1和n2的两种单色光,先后照射同一种金属均能产生光电效应.已知金属的红限频率为n0,测得两次照射时的遏止电压|Us2| = 2|Us1|,则这两种单色光的频率关系是()
A: n2 = n1 – 2n0
B: n2 = 2n1 – n0
C: n2 = n1 – n0
D: n2 = n1 + n0
A: n2 = n1 – 2n0
B: n2 = 2n1 – n0
C: n2 = n1 – n0
D: n2 = n1 + n0
举一反三
- 设用频率为n1和n2的两种单色光,先后照射同一种金属均能产生光电效应.已知金属的红限频率为n0,测得两次照射时的遏止电压|Ua2| = 2|Ua1|,则这两种单色光的频率有如下关系: A: n2 = n1 - n0 B: n2 = n1 + n0 C: n2 = 2n1 - n0 D: n2 = n1 - 2n0
- 用频率为n1和n2的两种单色光,先后照射同一种金属均能产生光电效应.已知金属的红限频率为n0,测得两次照射时的遏止电压|Us2| = 2|Us1|,则这两种单色光的频率关系是 A: n2 = n1 - 2n0. B: n2 = 2n1 - n0. C: n2 = n1 - n0. D: n2 = n1 + n0.
- 设n=n1n2,(n1,n2)=1,n1≥1,n2≥1,则φ(n)=φ(n1)φ(n2).若n=n1n2,n1≥1,n2≥1,则φ(n)=φ(n1)φ(n2)?
- 下面N×N的笛卡尔积的子集中,哪些可以构成函数? A: {(n1,n2) | n1,n2∈N and n1+n2 <10} B: {(n1,n2) | n1,n2∈N and n2 = n1^2} C: {(n1,n2) | n1,n2∈N and n1 = n2^2} D: {(n1,n2) | n1,n2∈N and n2为小于n1的素数个数}
- 有以下程序#include [stdio.h] void main(){ char *s= "120119110"; int n0,n1,n2,nn,i; n0=n1=n2=nn=i=0; do{ switch(s[i++]){ default : nn++; case '0': n0++; case '1': n1++; case '2': n2++; } }while(s[i]); printf("n0=%d,n1=%d,n2=%d,nn=%d\n",n0,n1,n2,nn); }程序的运行结果是( )。[/i] A: n0=3,n1=8,n2=9,nn=1 B: n0=2,n1=5,n2=1,nn=1 C: n0=2,n1=7,n2=10,nn=1 D: n0=4,n1=8,n2=9,nn=1