Among recent research in the field of host-guest chemistry, pillar[
n]arenes are undoubtedly one of the most thoroughly studied molecular hosts [
1-
7], due to their unique macrocyclic framework, versatile complexation properties, and ready chemical modification [
8-
14]. So far, the studies on pillar[
n]arene derivatives mainly focused on their host-guest complexation properties and the functions derived therefrom [
15-
23]. By virtue of their relatively strong binding ability, pillar[
n]arenes have demonstrated promising in applications such as stimuli-responsive materials [
24,
25], molecular recognition [
26,
27], energy transfer [
28-
30] and molecular absorption and separation [
31-
33]. On the other hand, pyrene is the most representative polyaromatic compound that can emit excimer fluorescence [
34-
40]. The excimer of pyrene derivatives typically forms at high concentrations. Reinforced intermolecular association between fluorophores [
35,
41-
44] or covalently linking two or more pyrenes were effective ways to improve excimer formation [
45-
48]. The photophysical properties of pyrene could be well manipulated by the supramolecular assembly, and the pyrene excimer-based supramolecular systems have been applied for sensing, optical materials and devices [
49-
51]. We have demonstrated that supramolecular hosts could significantly switch photochemical properties of photo-substrates [
52-
58] and energy transfer efficiency could be drastically improved by the complexation of pillar[5]arene [
28]. In the present communication, we report a novel possible application of pillar[5]arene on the basis of not its host-guest complexation properties but rather the template effect of well-orderly arranged composing units. Thus, a pyrene-tiaraed pillar[5] arene derivative demonstrated unique photophysical and photochemical properties so as to innovate a novel way of photo-writing.