A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1

妓妨隆壬壬奈躺涂底培抢乐漆

卑辱联澈贾汕钮柏化莎考辛埠

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1

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A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第2张

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反应A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第4张

,其速率方程为A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第6张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第8张

,则A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第10张

的关系是(       )。

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第12张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第14张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第17张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第17张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第22张

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第24张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第26张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第29张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第29张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第34张

A:恒温
B:恒压
C:恒容
答案: 恒容

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第36张

A:一级
B:零级
C:二级
答案: 二级

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第38张

A:它是一个双分子反应
B:它是一个二级反应
C:反应物与产物分子间的计量关系
答案: 反应物与产物分子间的计量关系

零级反应(       )基元反应。

A:肯定是
B:肯定不是
C:不一定是
答案: 肯定不是

对于反应 2NO2= 2NO + O2,当选用不同的反应物和产物来表示反应速率时,其相互关系为(       )。

A:– d[NO2]/2dt = d[NO]/2dt = d[O2]/dt = V-1 dx/dt
B:– d[NO2]/2dt = d[NO]/2dt = d[O2]/dt = dx/dt
C:-2d[NO2]/dt = 2d[NO]/dt = d[O2]/dt
答案: – d[NO2]/2dt = d[NO]/2dt = d[O2]/dt = V-1 dx/dt

实验测得反应:2A+B ─→2C + D 的速率方程为A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第41张

= k[A][B]。如以[A]0= 2[B]0开始实验,可将方程式改写成A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第41张

= ka[A]2,则kak的关系为(       )。

A:ka=0.5k
B:ka=k
C:0.5 ka=k
答案: ka=0.5k

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第46张

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第49张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第51张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第53张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第49张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第58张

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第60张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第63张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第65张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第63张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第70张

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第72张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第74张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第76张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第79张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第79张

反应 2N2O5─→ 4NO2+ O2 在328 K时,O2(g)的生成速率为0.75×10-4mol·dm-3·s-1。则该反应的反应速率以及N2O5的消耗速率分别为(          )mol·dm-3·s-1

A:

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第84张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第87张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第89张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第87张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第94张

A:该反应不一定是基元反应
B:该反应一定是基元反应;
C:该反应一定不是基元反应;
答案: 该反应不一定是基元反应

基元反应2A→B为双分子反应,此反应为(       )反应。

A:二级;
B:一级;
C:零级
答案: 二级;

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第96张

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第98张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第101张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第103张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第101张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第108张

为零级反应,A的半衰期为40 min,则A消耗1/4时所需时间为(       )。

A:20 min;
B:60 min
C:40 min;
答案: 20 min;

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第110张

A:0.75;
B:0.50;
C:0.25
答案: 0.75;

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第112张

A:T–1
B:L3N–1T–1
C:NL–3T–1
答案: NL–3T–1

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第114张

无法定义其反应级数。

A:对
B:错
答案: 对

基元反应不一定符合质量作用定律。

A:错
B:对
答案: 错

理想气体及其混合物属于(   )。

A:离域的相倚子系统;
B:独立的定域子系统
C:独立的离域子系统;
答案: 独立的离域子系统;

依据子配分函数析因子原理,分子的能级ε配分函数q和简并度g与各种运动形式的相应性质间的关系是:()。

A:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第117张

B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第119张

C:

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第121张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第117张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第126张

A:无法确定
B:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第128张

C:A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第131张

答案: A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第3张

A:T–1 B:L3N–1T–1 C:NL–3T–1 答案: NL–3T–1第131张

晶体中的原子分子或离子属于___________。

A:

离域的相倚子系统

B:

定域子系统

C:

独立的离域子系统

答案:

定域子系统

由单原子分子组成的理想气体,平动转动和振动的自由度分别是0。

A:对
B:错
答案: 对

有 6 个独立的定域粒子,分布在ε0ε1ε2上,能级非简并,各能级上的粒子数依次为N0=3,N1=2,N2=1,则该分布的微观状态数计算是P63P32P11

A:对
B:错
答案: 错

处于平衡态的孤立系统各微观态出现的概率相等

A:对
B:错
答案: 对

麦克斯韦–玻耳兹曼分布是平衡分布,但不是最概然分布

A:错
B:对
答案: 错

当温度远低于转动温度时,双原子分子理想气体的摩尔定容热容小于2.5R

A:错
B:对
答案: 对

在298.15K和101.325kPa时,摩尔平动熵最大的气体是CO2。

A:对
B:错
答案: 对

范德华气体属于离域的相倚子系统。

A:错
B:对
答案: 对



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